2min chapter

Latent Space: The AI Engineer Podcast — Practitioners talking LLMs, CodeGen, Agents, Multimodality, AI UX, GPU Infra and all things Software 3.0 cover image

Mapping the future of *truly* Open Models and Training Dolly for $30 — with Mike Conover of Databricks

Latent Space: The AI Engineer Podcast — Practitioners talking LLMs, CodeGen, Agents, Multimodality, AI UX, GPU Infra and all things Software 3.0

CHAPTER

The Evolution of Langchain Models

The evolutionary piece that is missing is like these models cannot die they cannot break a arm. If you get rejected your model time die so I think one of the things that's cool about Langchain for example we all know they're doing awesome work and building useful tools but these models can tell if they're wrong. You can ask a model to generate an utterance and that next token prediction loss function may not capture you may hallucinate something or make it up. But then you can show that generation to the same model and ask it to tell you if it's correct or not and it can recognize that it's not. That is a directly a function of the attention weights and that you

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