podqast

Al Engineering 101 with Chip Huyen (Nvidia, Stanford, Netflix)

Chip Huyen is a core developer on Nvidia’s Nemo platform, a former AI researcher at Netflix, and taught machine learning at Stanford. She’s a two-time founder and the author of two widely read books on AI, including AI Engineering, which has been the most-read book on the O’Reilly platform since its launch. Unlike many AI commentators, Chip has built multiple successful AI products and platforms and works directly with enterprises on their AI strategies, giving her unique visibility into what’s actually happening inside companies building AI products.
We discuss:

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Where to find Chip Huyen:

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Where to find Lenny:

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In this episode, we cover:
(00:00) Introduction to Chip Huyen
(04:28) Chip’s viral LinkedIn post
(07:05) Understanding AI training: pre-training vs. post-training
(08:50) Language modeling explained
(13:55) The importance of post-training
(15:20) Reinforcement learning and human feedback
(22:23) The importance of evals in AI development
(31:55) Retrieval augmented generation (RAG) explained
(38:50) Challenges in AI tool adoption
(43:19) Challenges in measuring productivity
(45:20) The three-bucket test
(49:10) The future of engineering roles
(55:31) ML Engineers vs. AI engineers
(57:12) Looking forward: the impact of AI
(01:05:48) Model capabilities vs. perceived performance
(01:08:23) Lightning round and final thoughts
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Referenced:

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