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AI Engineer · Technology

AI Engineer

We turn high signal in-person events for the top AI engineers, founders, leaders, and researchers in the world into the best free learning opportunities for millions around the world here on YouTube. Your subscribes, likes, comments, speaking, attendance, or sponsorships goes a long way toward making our biz model sustainable indefinitely. We strongly believe this industry deserves a better class of community and that we know how to do this well; we just need your support.

Episodes

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State of Data — Sean Cai, Independent / State of Data

26 Jul 2026
18m
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Data markets are undergoing a permanent fragmentation as specialized vendors outperform vertically integrated giants in sourcing high-quality, process-based data. Moving beyond generalist competence requires Type 1 data—real-world workflow captures like GitHub commits—rather than contrived Type 2 benchmarks, which ofte...

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The Messy Reality of Scale: Synthetic Data and Pre-Training — Marah Abdin & Robert McHardy, poolside

26 Jul 2026
17m
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Evals-Driven Development for a Mental Health AI Coach — Akele Reed & Dave Revere, SonderMind

25 Jul 2026
21m
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Loop Engineering from First Principles — Kyle Mistele, HumanLayer

25 Jul 2026
17m
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From Agent Traces to Agent Simulations — Rustem Feyzkhanov, Snorkel AI

25 Jul 2026
20m
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Evaling Video Slop — Maor Bril, Character.ai

25 Jul 2026
23m
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Building Closed-Loop Evals for a Multimodal Agent at Scale — Soumya Gupta & Jai Chopra, Uber

24 Jul 2026
21m
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How Evals and Prompts Shape Agent Behavior — Preetika Bhateja & Daniel Bump, YouTube Ads

24 Jul 2026AI processed

Building reliable AI agents requires a robust evaluation framework that evolves alongside the product. Establishing a strong foundation with optimized, LLM-friendly tools and remediation loops is essential before scaling. Early-stage development benefits from an intuition-based "vibing" approach, allowing for rapid ite...

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From Signal to PR: Anatomy of a Self-Improving Agent — Jason Lopatecki, Arize

24 Jul 2026
20m
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The Future of Evals: From LLM as a Judge to Agent as a Judge — Aparna Dhinakaran, Arize AI

24 Jul 2026
6m
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Everything Is a Rollout — Alex Shaw + Ryan Marten, Terminal-Bench, Harbor, Laude Institute

24 Jul 2026
21m
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Training Frontier Models to Out-Think Hackers — Uri Rolls, Arithmetic & Thom Wolf, Hugging Face

24 Jul 2026
17m
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The Unreasonable Effectiveness of Separating the Task from the Model — Maxime Rivest & Isaac Miller

23 Jul 2026
17m
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Perception Agents — Antje Barth, Amazon AGI Lab

23 Jul 2026
21m
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AI on Your Lakehouse: Context Comes in Shapes, Not Queries — Zach Blumenfeld, Neo4j

23 Jul 2026
1h 59m
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Integrating graph intelligence into lakehouse architectures enhances AI agent reasoning by providing structured context across disparate data sources. A semantic layer approach, utilizing Neo4j, creates an agnostic data model that bridges structured warehouse tables with unstructured document repositories. Three primar...

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Why We Killed Our Multi-Agent Pipeline — Subbiah Sethuraman and Abhilash Asokan, ZS Associates

23 Jul 2026
15m
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Citation Needed: Provenance for LLM-Built Knowledge Graphs — Daniel Chalef, Zep AI

23 Jul 2026
20m
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Local Agentic Theory For Mobile Games — Shafik Quoraishee & Joanne Song, The New York Times

23 Jul 2026
18m
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Video Has No Memory. Here's How We Built One. — James Le, TwelveLabs

23 Jul 2026
20m
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Why Agentic Systems Need Ontologies — Frank Coyle, UC Berkeley

23 Jul 2026
21m
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