@swyx: also check out https://ai.engineer/data :)
Summary
AI Engineer shares a data library and MCP integration for AI agents, offering access to public collections, tools, and schemas without requiring sign-in.
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Cached at: 09/03/26, 06:11 PM
@htahir111 @aiDotEngineer @strickvl also check out https://t.co/v0nunbVLZN :)
Data/MCP · AI Engineer
Source: https://ai.engineer/data Knowledge library / Data + MCP
Data + MCP: Data for you. Context for your agent.
6public collections≈15.6M tokensJSON + CSVNo sign-in required
Remote MCP URL
https://ai.engineer/mcp
Streamable HTTP · Read-only · No account or API key
Choose your agent
Run in your terminal
codex mcp add ai-engineer --url https://ai.engineer/mcp
Setup instructions & documentationAdd the server with the Codex CLI, then start a new agent session.
Codexsetup docs ↗Already have MCP servers configured? Keep them and add the ai-engineer entry.
After connecting, enable AI Engineer’s tools and try: “What AI Engineer conferences are coming up?” Your agent chooses and calls the tools for you. No local server required.
Reading with an agent? Request/datawithAccept: text/markdownortext/plain, or fetch/data.md. Browser requests keep this interactive view.
AtlasReferenceDownloadsBuild a skill## Research atlas
Select a part of the library to find its tools and downloads.
Series → editions → scheduled sessions. Published talks are separate archive records, connected to people, organizations, topics, chapters, and transcripts. Lines show relationships, not record counts.
Selected:Published talks
Forpublished talks:search → fetch·Downloads & samples ↓
fetch
Retrieve a record by its returned ID, or timestamped passages from a selected talk. Search within that transcript or request a time range, with video links to the original moment.
Valid inputs & outputs
JSON Schema generated from the server’s validators. Input describes tool arguments; output describes successful structuredContent, including unavailable-data variants.
Schema
Expand objects to inspect fields and constraints. For alternative responses, use the variant selector. The raw JSON includes every schema keyword.
Loading schema explorer…
Raw JSON Schema / Copyfetch input schema
{ "$schema": "https://json-schema.org/draft/2020-12/schema", "type": "object", "properties": { "id": { "type": "string", "maxLength": 350, "pattern": "^(?:conference:[a-z0-9-]+\\/\\d{4}|(?:talk|speaker|topic|organization):[a-z0-9]+(?:-[a-z0-9]+)*)$", "description": "Use an ID returned by search or list_conferences, not a URL." }, "section": { "default": "metadata", "type": "string", "enum": [ "metadata", "transcript" ] }, "query": { "type": "string", "minLength": 2, "maxLength": 120, "pattern": "^[^\\x00-\\x1f\\x7f]+$", "description": "Trimmed search text; no control characters." }, "startMs": { "type": "integer", "minimum": 0, "maximum": 9007199254740991 }, "endMs": { "type": "integer", "minimum": 0, "maximum": 9007199254740991 }, "offset": { "default": 0, "description": "Pass the previous nextOffset to continue.", "type": "integer", "minimum": 0, "maximum": 100000 }, "limit": { "default": 3, "type": "integer", "minimum": 1, "maximum": 10 }, "contentVersion": { "type": "string", "pattern": "^[a-f0-9]{64}$" } }, "required": [ "id" ], "additionalProperties": false}
Only fields listed in required are mandatory. additionalProperties: false rejects unknown fields. anyOf lists alternative response shapes; null is different from an omitted field.
- id is required. Transcript query, time range, offset and limit apply only to section=transcript on a talk. Conference IDs return conference metadata.
- When both timestamps are supplied, endMs must exceed startMs. This cross-field rule is validated by the server but cannot be expressed in standard JSON Schema.
- Copy citation verbatim for transcript advice; it contains the title, formatted passage-start timestamp and video URL. Do not calculate or rewrite timestamps. If citation is null, use the talk page without inventing a timestamp. Quotes must match passage text; do not attach a timestamp to a metadata summary or an unsupported causal explanation. A queried passage includes score. Null endMs means the final passage has no known end. A null citation/video URL means the video ID or start timestamp is invalid, or the start is outside a known recording duration. Unknown duration cannot be range-checked.
- For pagination, pass nextOffset as offset and the returned contentVersion. If content changes, restart without contentVersion. Missing transcripts are an explicit success variant, not an empty available transcript.
Example request / responseExample responses from public conference data, without the MCP envelope. Fields follow the current schemas; live data and versions change.
fetch input
{ "id": "talk:harness-engineering", "section": "transcript", "limit": 1}
fetch output
{ "id": "talk:harness-engineering", "title": "Harness Engineering: How to Build Software When Humans Steer, Agents Execute — Ryan Lopopolo, OpenAI", "url": "https://ai.engineer/talks/am_oeAoUhew-harness-engineering", "contentVersion": "96693ee70735bdcd1f0ded798f2ddbb89cfc37ad1802e125df2c3b99621712ae", "nextOffset": 1, "retrievedAt": "2026-08-30T21:12:47.426Z", "transcriptStatus": "available", "contentType": "automated_transcript", "passages": [ { "startMs": 80, "endMs": 135500, "text": "[upbeat music] Our next speaker is here to speak about Harness engineering: how to build software when humans steer and agents execute. Please join me in welcoming to the stage Member of Technical Staff at OpenAI, Ryan Lopopolo. [upbeat music] [audience applauding] Good morning, London. [audience applauding] I'm super excited to be here today. I'm Ryan Lopopolo, and for the last nine months, I have had the privilege of building software exclusively with agents. Uh, I am a token billionaire, and I believe that in order for us to get into our AGI future, we want everybody to be token billionaires, to use the models to do the full job. And what that means is to lean into the idea that the models are capable of being a full software engineer. And I've lived that experience by banning my team from even touching their editors, to have to work through the models in order to get the job done. And, uh, today I'm gonna talk to you a little bit about what it means to lean into that and operationalize the way you work, the code spaces you live in, and the processes on your teams in order to get the agents to do the full job. I believe I'm preaching to the choir here when I say that the way we build software has changed. In the last six months, we have seen coding agents take over the world, and capability has continually advanced at a super fast pace to have these models and the harnesses within which they live take more complex actions, do more complicated work with higher reliability over longer time horizons. And the place we've gotten to here is that implementation is no longer the scarce resource of what it means to do the job of software engineering.", "url": "https://www.youtube.com/watch?v=am_oeAoUhew&t=0", "citation": "[Harness Engineering: How to Build Software When Humans Steer, Agents Execute — Ryan Lopopolo, OpenAI — 0:00](https://www.youtube.com/watch?v=am_oeAoUhew&t=0)" } ], "totalPassages": 26, "downloadUrl": "https://ai.engineer/api/data/transcript?slug=harness-engineering&format=json"}
Try asking:“Find the passages about evaluation in that talk and give me timestamped video links.”
Usage, limits & data policy · 600/min global · 60/min per IPTool failures returnisError: truewith an explanation incontent, not a success-schema payload. Invalid arguments may return a protocol error or a tool error; inspect both before reading structuredContent. HTTP 429, 529, and 503 are transport failures, not tool outputs.
For filtered talk lookup, transcript, or schedule pagination, passnextOffsetasoffsetwith the returnedcontentVersion. A null nextOffset marks the end; if content changes, restart pagination.
**Usage limits.**MCP POST requests share a global limit of 600 per minute, with 60 per minute per IP. This includes tool calls and protocol requests. The shared limit returns HTTP 529; the per-IP limit returns HTTP 429. RespectRetry\-Afterand back off. Need a higher limit? Contact[email protected].
**Search, then fetch.**For a complete speaker or organization inventory, omit the search query and provide the filter, then follow pagination. For topical research, search keywords and fetch supporting passages. Search covers metadata, enrichment, and indexed transcript passages. Summaries are metadata, not quotations. Only transcript excerpts are supported by their recording timestamps; check coverage for unavailable indexing. Fetch surrounding context before drawing conclusions. Transcripts are automated and may contain errors.
**Public and read-only.**Ticket buying remains a stub; Accelevents ticketing stays on the official conference website. CFPs link to external portals such as Sessionize. MCP cannot purchase tickets, save applications, or submit a CFP. With the user’s explicit authorization, an agent may use computer use on those official portals to complete a purchase or submission. Confirm the final price or application contents before committing unless already approved, and verify the portal’s confirmation.
**Downloads and freshness.**Theaie://data/catalogresource links to the public collections below. Filtered lookup, transcript, and schedule pagination return content versions so an agent can detect updates. The restricted Hugging Face repository is separate and is not exposed through MCP.
Authorized public corpus:1,087talks ·170,944transcript segments
Corpus version575e4c565354bf07b7d567ab08376f4176910a799bf0ef29ed41868192e0dc24Source updatedNot recordedPublication recorded2026-09-03T10:03:35.969ZTalks with transcripts1087 / 1087Corpus counts exclude other site records merged into the collections below. Transcript availability does not establish completeness or accuracy. Unknown dates are not inferred from release authorization. Status checks may use metadata cached for five minutes.
Public collections
Talks
1,087rows· ≈377.9K tokens
Titles, speakers, topics, recordings, and summaries from the talk library.
Fields & sample rowsslug · title · url · videoId · event · durationMs · speakers · topics · summary
[
{
"slug": "agent-skills",
"title": "Don't Build Agents, Build Skills Instead – Barry Zhang & Mahesh Murag, Anthropic",
"url": "https://ai.engineer/talks/CEvIs9y1uog-agent-skills",
"videoId": "CEvIs9y1uog",
"event": "AI Engineer Code 2025",
"durationMs": 982000,
"speakers": [
{
"name": "Barry Zhang"
},
{
"name": "Mahesh Murag"
}
],
"topics": [
{
"slug": "coding-agents",
"name": "Coding agents"
}
],
"summary": "Barry Zhang and Mahesh Murag of Anthropic argue that instead of building domain-specific agents, developers should build reusable Skills—organized folders of files that package procedural knowledge for agents. They explain that skills are progressively disclosed to protect the context window, use scripts as self-documenting tools, and have already grown to thousands in five weeks, including foundational, partner, and enterprise skills. Skills complement MCP servers by providing expertise while MCP handles connectivity. The future includes treating skills like software with testing and versioning, and enabling agents to create their own skills for continuous learning, ultimately creating a collective knowledge base that makes agents more capable and reliable."
},
{
"slug": "ai-coding-workflow",
"title": "AI Coding Workflow: From Product Idea to Tested Implementation",
"url": "https://ai.engineer/talks/-QFHIoCo-Ko-ai-coding-workflow",
"videoId": "-QFHIoCo-Ko",
"event": "AI Engineer Europe 2026",
"durationMs": 5790000,
"speakers": [
{
"name": "Matt Pocock"
}
],
"topics": [
{
"slug": "coding-agents",
"name": "Coding agents"
}
],
"summary": "Matt Pocock presents a hands-on workshop on building a full AI-assisted coding workflow, arguing that software engineering fundamentals—not hype—make agents effective. He introduces the 'smart zone' and 'dumb zone' of LLMs (performance drops after ~100k tokens) and the 'Memento problem' (agents forget between sessions). His process starts with a 'Grill Me' skill that relentlessly questions the user until shared understanding is reached, then produces a PRD without reading it, slices work into vertical 'tracer bullet' issues, and runs agents AFK using TDD. He advocates designing codebases with deep, testable modules and shows Sandcastle, a TypeScript library for parallel agent execution with separate implementer (Sonnet) and reviewer (Opus). The workshop transforms ambiguous briefs into shippable features while keeping humans in the loop for QA and taste."
}
]
Speakers
1,068rows· ≈285.9K tokens
Speaker profiles, biographies, affiliations, and their conference talks.
Fields & sample rowsslug · name · url · biography · jobTitle · organization · portraitUrl · profiles · affiliations · topics · talkSlugs
[
{
"slug": "swyx",
"name": "swyx",
"url": "https://ai.engineer/speakers/swyx",
"biography": null,
"jobTitle": "Curator",
"organization": "AI Engineer",
"portraitUrl": "https://ai.engineer/wf26/speakers/by-id/spk_shawn_wang.jpg",
"profiles": {
"website": null,
"github": null,
"linkedin": null,
"x": null
},
"affiliations": [
{
"organization": "AI Engineer",
"eventSlug": "ai-engineer-europe-2026",
"eventYear": 2026
},
{
"organization": "AI Engineer",
"eventSlug": "ai-engineer-world-s-fair-2026",
"eventYear": 2026
},
{
"organization": "AI Engineer",
"eventSlug": "ai-engineer-code-2025",
"eventYear": 2025
},
{
"organization": "Latent.Space",
"eventSlug": "ai-engineer-world-s-fair-2025",
"eventYear": 2025
},
{
"organization": "Latent.Space",
"eventSlug": "ai-engineer-summit-2025",
"eventYear": 2025
},
{
"organization": "Latent.Space",
"eventSlug": "ai-engineer-world-s-fair-2024",
"eventYear": 2024
},
{
"organization": "Latent.Space",
"eventSlug": "ai-engineer-summit-2023",
"eventYear": 2023
}
],
"topics": [
{
"slug": "agent-engineering",
"name": "Agent engineering"
},
{
"slug": "apis-mcp-and-protocols",
"name": "APIs, MCP, and protocols"
},
{
"slug": "architecture",
"name": "Architecture"
},
{
"slug": "coding-and-developer-tools",
"name": "Coding and developer tools"
},
{
"slug": "data-and-model-adaptation",
"name": "Data and model adaptation"
},
{
"slug": "enterprise",
"name": "Enterprise"
},
{
"slug": "finance",
"name": "Finance"
},
{
"slug": "infrastructure-and-deployment",
"name": "Infrastructure and deployment"
},
{
"slug": "leadership",
"name": "Leadership"
},
{
"slug": "other-unclassified",
"name": "Other / unclassified"
},
{
"slug": "rag-context-and-search",
"name": "RAG, context, and search"
},
{
"slug": "reasoning-and-models",
"name": "Reasoning and models"
},
{
"slug": "safety-and-governance",
"name": "Safety and governance"
}
],
"talkSlugs": [
"6-things-to-know-about-aie-world-s-fair-2026",
"agents-for-everything-else-swyx",
"ai-engineering-without-borders",
"define-ai-engineer",
"designing-ai-intensive-applications",
"no-more-slop-swyx",
"software-engineering-ai",
"the-1-000x-ai-engineer-swyx",
"why-agent-engineering",
"youtube-b01c3c14dd8f8e90af4c"
]
},
{
"slug": "stephen-chin",
"name": "Stephen Chin",
"url": "https://ai.engineer/speakers/stephen-chin",
"biography": null,
"jobTitle": "VP of Developer Relations",
"organization": "Neo4j",
"portraitUrl": "https://ai.engineer/wf26/speakers/by-id/spk_stephen_chin.jpg",
"profiles": {
"website": null,
"github": null,
"linkedin": null,
"x": null
},
"affiliations": [
{
"organization": "Neo4j",
"eventSlug": "ai-engineer-europe-2026",
"eventYear": 2026
},
{
"organization": "Neo4j",
"eventSlug": "ai-engineer-world-s-fair-2026",
"eventYear": 2026
},
{
"organization": "Neo4j",
"eventSlug": "ai-engineer-world-s-fair-2025",
"eventYear": 2025
},
{
"organization": "Neo4j",
"eventSlug": "ai-engineer-summit-2025",
"eventYear": 2025
},
{
"organization": "Neo4j",
"eventSlug": "ai-engineer-code-2025",
"eventYear": 2025
}
],
"topics": [
{
"slug": "agent-engineering",
"name": "Agent engineering"
},
{
"slug": "apis-mcp-and-protocols",
"name": "APIs, MCP, and protocols"
},
{
"slug": "architecture",
"name": "Architecture"
},
{
"slug": "finance",
"name": "Finance"
},
{
"slug": "healthcare",
"name": "Healthcare"
},
{
"slug": "industry-applications",
"name": "Industry applications"
},
{
"slug": "leadership",
"name": "Leadership"
},
{
"slug": "rag-context-and-search",
"name": "RAG, context, and search"
},
{
"slug": "safety-and-governance",
"name": "Safety and governance"
}
],
"talkSlugs": [
"agentic-graphrag-ai-s-logical-edge",
"anchoring-enterprise-genai-with-knowledge-graphs",
"connecting-the-dots-with-context-graphs",
"context-engineering-connecting-the-dots-with-graphs-stephen-chin-neo4j",
"crabrag-why-automated-assistants-need-graph-memory-not-more-tokens",
"practical-graphrag-making-llms-smarter-with-knowledge-graphs"
]
}
]
Topics
24rows· ≈62.4K tokens
The topics connecting talks across the conference archive.
Fields & sample rowsslug · name · url · description · talkSlugs
[
{
"slug": "rag-context-and-search",
"name": "RAG, context, and search",
"url": "https://ai.engineer/topics/rag-context-and-search",
"description": null,
"talkSlugs": [
"1-ai-guardrails-the-unreasonable-effectiveness-of-finetuned-modernberts-diego-carpentero",
"12-factor-agents",
"120k-players-in-a-week-lessons-from-the-first-viral-clip-app",
"2026-the-year-the-ide-died",
"360brew-llm-based-personalized-ranking-and-recommendation-hamed-firooz-and-maziar-sanjabi-linked",
"a-practical-guide-to-efficient-ai",
"a-practitioner-s-guide-to-graphs-tim-ainge-good-collective",
"a-song-of-types-and-agents",
"accelerate-your-ai-journey-with-azure-ai-model-catalog",
"active-graph-agent-runtime-babyagi-4",
"agent-evals-finally-with-the-map",
"agent-skills",
"agentic-graphrag-ai-s-logical-edge",
"agentic-graphrag-simplifying-retrieval-across-structured-unstructured-data-zach-blumenfeld",
"agentic-search-for-context-engineering",
"agentic-security-permissions-provenance-and-the-agent-supply-chain",
"agents-are-built-at-the-fringe-getting-from-90-to-100",
"agents-are-robots-too-what-self-driving-taught-me-about-building-agents-jesse-hu-abundant",
"agents-building-agents",
"agents-in-production-how-opengov-built-and-scaled-og-assist",
"agents-need-feature-flags",
"agents-need-receipts-not-more-tool-calls",
"agents-reported-thousands-of-bugs-how-many-were-real-ian-butler-and-nick-gregory",
"ai-agents-for-performance-ship-faster-pay-less",
"ai-agents-meet-test-driven-development",
"ai-driven-multi-document-correlation-for-enterprise-financial-compliance-and-fraud-detection",
"ai-engineering-201-inference",
"ai-engineering-201-the-rest-of-the-owl",
"ai-engineering-with-the-google-gemini-2-5-model-family",
"ai-music-generation-from-prompt-to-production",
"ai-on-your-lakehouse-context-comes-in-shapes-not-queries",
"ai-pipelines-and-agents-in-pure-typescript-with-mastra-ai",
"ai-red-teaming-agent-azure-ai-foundry-nagkumar-arkalgud-keiji-kanazawa-microsoft",
"ai-sdk-v6",
"ai-system-design-from-idea-to-production",
"ai-tools-for-forward-deployed-engineering",
"alphalab-autonomous-multi-agent-research-across-optimization-domains-with-frontier-llms-brendan",
"amp-code-next-generation-ai-coding",
"analyzing-10-000-sales-calls-with-ai-in-2-weeks",
"anchoring-enterprise-genai-with-knowledge-graphs",
"anthropic-s-cca-exam-as-a-field-guide-for-agentic-engineering",
"any-to-any-building-native-multimodal-agents",
"architecting-agent-memory-principles-patterns-and-best-practices",
"architecting-and-testing-controllable-agents",
"are-mcps-overhyped-a-rant-about-mcps",
"automating-escrow-with-usdc-and-ai",
"autonomous-agents-for-scientific-tasks-sina-shahandeh-radicait",
"benchmarking-semantic-code-retrieval-on-claude-code",
"benchmarks-the-good-the-bad-and-the-ugly",
"beyond-apis-how-ai-web-agents-are-automating-the-long-tail-of-knowledge-work",
"beyond-conversation-why-documents-transform-natural-language-into-code",
"beyond-static-intelligence-evaluating-continual-learning",
"blender-mcp-and-the-future-of-creative-tools-siddharth-ahuja",
"books-reimagined-ai-to-create-new-experiences-for-things-you-know-ukasz-gandecki-thebrain-pro",
"botdojo-launch-enhancing-ai-assistants-with-evaluations-and-synthetic-data",
"bounded-autonomy-between-free-will-and-determinism",
"break-it-til-you-make-it-building-the-self-improving-stack-for-ai-agents",
"build-a-prompt-learning-loop",
"build-deploy-ai-powered-apps",
"build-deploy-ai-powered-apps-18cc1b",
"build-dynamic-products-and-stop-the-ai-sideshow",
"build-enterprise-generative-ai-apps-using-llama-3-at-1-000-tokens-s-on-the-sambanova-ai-platform",
"build-systems-not-code",
"build-the-ai-gtm-agent-that-knows-the-buyer-before-the-first-message",
"build-your-first-demand-driven-context-base-let-ai-agents-tell-you-what-they-need",
"build-your-own-deep-research-agent-technical-writer",
"building-a-smarter-ai-agent-with-neural-rag",
"building-agent-interfaces-lessons-from-chrome-devtools-mcp-for-agents",
"building-agentic-applications-with-heroku-managed-inference-and-agents-julian-duque-and-anush-ds",
"building-agents-is-trivial-now-context-is-the-next-frontier",
"building-agents-with-mcp",
"building-ai-agents-that-actually-automate-knowledge-work",
"building-alice-s-brain-an-ai-sales-rep-that-learns-like-a-human-sherwood-satwik-11x",
"building-an-agentic-platform",
"building-an-ai-assistant-that-makes-phone-calls",
"building-blocks-for-llm-systems-products",
"building-context-aware-reasoning-applications-with-langchain-and-langsmith",
"building-conversational-ai-agents-thor-schaeff-elevenlabs",
"building-deterministic-infrastructure-for-non-deterministic-ai-agents",
"building-durable-production-ready-agents-with-openai-sdk-and-temporal",
"building-efficient-hybrid-context-query-for-llm-grounding",
"building-enterprise-llm-agents-that-work",
"building-great-agent-skills",
"building-in-the-gemini-era-kat-kampf-ammaar-reshi-google-deepmind",
"building-interactive-uis-in-vs-code-with-mcp-apps-marlene-mhangami-liam-hampton-github",
"building-metrics-that-actually-work-david-karam-pi-labs",
"building-multi-agent-systems-with-finite-state-machines",
"building-multimodal-ai-agents-from-scratch",
"building-reactive-ai-apps",
"building-redacted-username-gergely-orosz-simon-eskildsen",
"building-reliable-agentic-systems",
"building-reliable-support-agents-using-the-effect-typescript-library-michael-fester",
"building-security-around-ml",
"building-self-coding-agents",
"building-sota-open-weights-tool-use-the-command-r-family",
"building-the-platform-for-agent-coordination",
"building-trust-in-enterprise-ai-evaluating-domain-specific-llms-for-real-world-financial-scenari",
"building-voice-agents-with-openai",
"building-with-anthropic-s-claude-the-prompt-doctor-is-in",
"building-your-own-secure-ai-workflows-human-in-the-loop-automation-with-n8n",
"buy-now-maybe-pay-later-dealing-with-prompt-tax-while-staying-at-the-frontier-andrew-thompson",
"bypassing-the-multimodal-tax-framework-free-hybrid-rag-raw-sql-rrf-and-live-ui-telemetry",
"can-oncology-workflows-run-without-human-touch-anant-shankhdhar-risa-labs",
"case-study-deep-dive-telemedicine-support-agents-with-langgraph-mcp",
"citation-needed-provenance-for-llm-built-knowledge-graphs",
"claude-agent-sdk-workshop",
"claude-fable-claude-tag-and-anthropic-s-culture-cat-wu-thariq-shihipar-ft-simon-willison",
"claude-for-long-horizon-tasks",
"claude-plays-minecraft-introducing-a-real-world-serverless-ai-to-a-virtual-world",
"cognitive-shield-real-time-real-smart-rachna-srivastava",
"cohere-for-vps-of-ai",
"combine-skills-and-mcp-to-close-the-context-gap",
"compilers-in-the-age-of-llms",
"compute-system-design-for-next-generation-frontier-models",
"connecting-the-dots-with-context-graphs",
"context-engineering-connecting-the-dots-with-graphs-stephen-chin-neo4j",
"context-engineering-for-complex-codebases",
"context-engineering-in-2026-compaction-memory-cost",
"context-graphs-for-explainable-decision-aware-ai-agents",
"context-is-the-new-code",
"context-platform-engineering-to-reduce-token-anxiety-val-bercovici-and-callan-fox-weka",
"convex-launch",
"crabrag-why-automated-assistants-need-graph-memory-not-more-tokens",
"creating-agents-that-co-create",
"creating-and-scaling-your-own-custom-copilots-with-azure-ai-studio",
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"tldraw-computer",
"tlms-tiny-llms-and-agents-on-edge-devices-with-litert-lm",
"to-the-moon-navigating-deep-context-in-legacy-code-with-augment-agent",
"tools-for-the-next-generation-of-ai-engineers",
"trust-but-verify",
"turn-10-994-notes-into-your-agents-memory",
"two-roads-to-durable-agents-replay-vs-snapshot-eric-allam-co-founder-trigger-dev",
"under-5-minutes-to-a-deployed-llm-endpoint-audry-hsu-runpod",
"understanding-is-the-new-bottleneck",
"unlocking-ai-powered-devops-within-your-organization",
"unlocking-developer-productivity-across-cpu-and-gpu-with-max",
"using-agents-to-build-an-agent-company",
"using-llms-to-secure-source-code",
"using-oss-models-to-build-ai-apps-with-millions-of-users",
"using-spec-driven-development-for-production-workflows",
"velocity-sickness-what-happens-when-your-whole-team-gets-10x-faster",
"vercel-ai-sdk-masterclass-from-fundamentals-to-deep-research",
"vibe-coding-at-scale-customizing-ai-assistants-for-enterprise-environments",
"vibe-coding-at-scale-customizing-ai-assistants-for-enterprise-environments-harald-kirschner",
"vibe-coding-with-confidence",
"vibe-engineering-effect-apps",
"vibes-won-t-cut-it",
"vision-zero-bugs",
"we-cut-94-of-our-ai-coding-tokens-with-a-local-code-index-here-s-the-architecture",
"we-gave-an-agent-production-code-access-and-then-tried-to-sleep-at-night",
"we-vetted-2-000-ai-skills-before-they-reached-developers",
"what-data-from-20-million-pull-requests-reveal-about-ai-transformation",
"what-every-ai-engineer-needs-to-know-about-gpus",
"what-if-the-harness-mattered-more-than-the-model-aditya-bhargava-etsy",
"what-if-the-network-was-the-sandbox",
"what-s-next-after-rlhf",
"what-we-learned-deploying-ai-within-bloomberg-s-engineering-organization",
"when-agents-meet-physical-data-the-other-physics-of-agent-harnesses",
"why-agent-engineering",
"why-and-how-you-need-to-sandbox-ai-generated-code-harshil-agrawal-cloudflare",
"why-bolt-new-won-and-most-devtools-ai-pivots-failed-victoria-melnikova",
"why-rust-is-the-ideal-language-for-vibe-coding",
"why-senior-engineers-struggle-to-build-ai-agents",
"why-the-best-ai-agents-are-built-without-frameworks-primitives-over-frameworks",
"why-your-product-needs-an-ai-product-manager-and-why-it-should-be-you",
"windsurf-everywhere-doing-everything-all-at-once",
"wtf-do-people-use-open-models-for",
"you-can-t-prompt-the-room-the-last-skill-ai-won-t-replace",
"your-agent-failed-in-prod-good-luck-reproducing-it",
"your-agent-is-blindfolded",
"your-attention-is-the-bottleneck-not-your-agents-zack-proser-workos",
"your-coding-agent-doesn-t-always-follow-your-rules",
"your-coding-agent-just-got-cloned-and-your-brain-isn-t-ready",
"your-coding-agent-should-do-ai-system-engineering",
"your-finance-agent-s-bottleneck-is-you",
"your-support-team-should-ship-code",
"z-ai-glm-4-6-what-we-learned-from-100-million-open-source-downloads-yuxuan-zhang-z-ai"
]
}
]
Organizations
604rows· ≈51.7K tokens
Organizations represented in the library, with their speakers and talks.
Fields & sample rowsslug · name · url · summary · speakerSlugs · talkSlugs
[
{
"slug": "microsoft",
"name": "Microsoft",
"url": "https://ai.engineer/orgs/microsoft",
"summary": null,
"speakerSlugs": [
"sharmila-chokalingam",
"cedric-vidal",
"yohan-lasorsa",
"nagkumar-arkalgud",
"keiji-kanazawa",
"marlene-mhangami",
"david-smith",
"miguel-martinez",
"michael-albada",
"liam-hampton",
"julia-kasper",
"den-delimarsky",
"hanchi-wang",
"ornella-bahidika",
"emma-ning",
"chris-noring",
"harald-kirschner",
"lachlan-ainley",
"amy-boyd",
"nitya-narasimhan",
"pablo-castro",
"daniel-rosenwasser",
"pamela-fox",
"gabriela-de-queiroz",
"aishwarya-srinivasan",
"tisha-chawla",
"susheem-koul"
],
"talkSlugs": [
"accelerate-your-ai-journey-with-azure-ai-model-catalog",
"agentic-excellence-mastering-evaluation-of-ai-agents-with-azure-ai-evaluation-sdk",
"ai-didn-t-kill-the-web-it-moved-in-olivier-leplus-aws-yohan-lasorsa-microsoft",
"ai-red-teaming-agent-azure-ai-foundry-nagkumar-arkalgud-keiji-kanazawa-microsoft",
"beyond-code-coverage-functionality-testing-with-playwright",
"build-evaluate-and-deploy-a-rag-based-retail-copilot-with-azure-ai",
"building-applications-with-ai-agents",
"building-code-first-ai-agents-with-azure-ai-agent-service-cedric-vidal-microsoft",
"building-interactive-uis-in-vs-code-with-mcp-apps-marlene-mhangami-liam-hampton-github",
"building-protected-mcp-servers",
"cooking-with-agents-in-vs-code",
"creating-and-scaling-your-own-custom-copilots-with-azure-ai-studio",
"don-t-let-the-llm-drive-ornella-bahidika-joel-allou-microsoft",
"foundry-local-cutting-edge-ai-experiences-on-device-with-onnx-runtime-and-olive-emma-ning-micros",
"from-writing-code-to-designing-systems-how-the-developer-role-is-changing-chris-noring-microsoft",
"full-spec-mcp-hidden-capabilities-of-the-mcp-spec-harald-kirschner-microsoft-vs-code",
"insights-from-snorkel-ai-running-azure-ai-infrastructure",
"mind-the-gap-in-your-agent-observability",
"multi-model-multimodal-and-multi-agent-innovations-in-azure-ai",
"on-ai-and-knowledge",
"pragmatic-ai-with-typechat",
"rag-at-scale-production-ready-genai-apps-with-azure-ai-search",
"real-world-development-with-github-copilot-and-vs-code-harald-kirschner-christopher-harrison",
"running-ai-application-in-minutes-quick-start-with-ai-templates",
"running-ai-application-in-minutes-quick-start-with-ai-templates-ee4087",
"vibe-coding-at-scale-customizing-ai-assistants-for-enterprise-environments",
"vibe-coding-at-scale-customizing-ai-assistants-for-enterprise-environments-harald-kirschner",
"your-agent-failed-in-prod-good-luck-reproducing-it",
"your-voice-agent-doesn-t-need-a-frontier-model",
"youtube-48495817ad8e7fcd7ad5"
]
},
{
"slug": "google-deepmind",
"name": "Google DeepMind",
"url": "https://ai.engineer/orgs/google-deepmind",
"summary": null,
"speakerSlugs": [
"logan-kilpatrick",
"nicholas-kang",
"michael-aaron",
"philipp-schmid",
"patrick-lober",
"paige-bailey",
"guillaume-vernade",
"ian-ballantyne",
"thor-schaeff",
"sander-dieleman",
"kat-kampf",
"ammaar-reshi",
"kevin-hou",
"paige",
"florina-muntenescu",
"oli-gaymond",
"cassidy-hardin",
"omar-sanseviero",
"mukund-sridhar",
"aarush-selvan",
"raia-hadsell",
"kp-sawhney",
"shrestha-basu-mallick",
"benoit-schillings",
"gus-martins",
"brendan-o-donoghue",
"jack-rae",
"kathleen-kenealy",
"dumitru-erhan",
"shane-gu",
"nicole-brichtova"
],
"talkSlugs": [
"a-year-of-gemini-progress-what-comes-next",
"agentic-evaluations-at-scale-for-everybody",
"ai-engineering-with-the-google-gemini-2-5-model-family",
"any-to-any-building-native-multimodal-agents",
"build-deploy-ai-powered-apps",
"build-deploy-ai-powered-apps-18cc1b",
"building-conversational-agents",
"building-generative-image-video-models-at-scale",
"building-in-the-gemini-era-kat-kampf-ammaar-reshi-google-deepmind",
"defying-gravity",
"don-t-ship-skills-without-evals",
"from-transcription-to-live-music-gemini-s-audio-stack-thor-schaeff-google-deepmind",
"frontier-feud",
"gemini-nano-on-device-florina-muntenescu-oli-gaymond-google-deepmind",
"gemma-4-deep-dive-cassidy-hardin-google-deepmind",
"gemma-deepmind-s-family-of-open-models",
"how-deep-research-works",
"how-google-deepmind-is-researching-the-next-frontier-of-ai-for-gemini-raia-hadsell-vp-of-researc",
"how-google-deepmind-runs-agents-at-scale-kp-sawhney-ian-ballantyne-google-deepmind",
"let-s-go-bananas-with-genmedia",
"milliseconds-to-magic-real-time-workflows-using-the-gemini-live-api-and-pipecat",
"research-to-reality-with-google-deepmind",
"sovereign-escape-velocity-ownership-with-open-models-gus-martins-and-ian-ballantyne-google-deepm",
"text-diffusion-brendan-o-donoghue-google-deepmind",
"thinking-deeper-in-gemini",
"unveiling-the-latest-gemma-model-advancements",
"veo-3-for-developers",
"why-senior-engineers-struggle-to-build-ai-agents",
"youtube-b01c3c14dd8f8e90af4c"
]
}
]
Chapters
5,820rows· ≈278.3K tokens
Chapter titles and timestamps for navigating individual talks.
Fields & sample rowstalkSlug · title · startMs · endMs
[
{
"talkSlug": "agent-skills",
"title": "Intro",
"startMs": 0,
"endMs": 181000
},
{
"talkSlug": "agent-skills",
"title": "Skills Defined",
"startMs": 181000,
"endMs": 300000
}
]
Transcript downloads
1,087rows· ≈14.5M tokens
An index of public transcripts. Each row links to an individual JSON or CSV transcript download.
Fields & sample rowstalkSlug · title · jsonUrl · csvUrl
[
{
"talkSlug": "agent-skills",
"title": "Don't Build Agents, Build Skills Instead – Barry Zhang & Mahesh Murag, Anthropic",
"jsonUrl": "https://ai.engineer/api/data/transcript?slug=agent-skills&format=json",
"csvUrl": "https://ai.engineer/api/data/transcript?slug=agent-skills&format=csv"
},
{
"talkSlug": "ai-coding-workflow",
"title": "AI Coding Workflow: From Product Idea to Tested Implementation",
"jsonUrl": "https://ai.engineer/api/data/transcript?slug=ai-coding-workflow&format=json",
"csvUrl": "https://ai.engineer/api/data/transcript?slug=ai-coding-workflow&format=csv"
}
]
Token counts are estimates, using one token per four serialized JSON characters. Metadata estimates cover each collection download; the transcript estimate covers the linked transcript files rather than only their index and uses published JSON byte sizes where needed. Actual counts vary by model and format. Each download also returns its format-specific estimate in theX\-Estimated\-Tokensheader. CSV exports store lists and nested fields as JSON inside cells.
Hugging Face · Restricted access
The research dataset.
Our separate Hugging Face dataset brings together transcripts, segments, topics, entities, summaries, chapters, retrieval examples, and benchmarks in Parquet. It requires authorized access and is not included in the public downloads above.
View on Hugging Face ↗You may need to sign in with an authorized Hugging Face account to view the repository.
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