
19 - Mechanistic Interpretability with Neel Nanda
AXRP - the AI X-risk Research Podcast
Reverse Engineering Models on Rearrangement Learning Problems
There are various sub fields of air alignment, but I think they're not like totally isolated. Fundamentally, what we're trying to do in alignment is making claims about model internals and using fuzzy, what Richard new calls, pre formal ideas around how to reason about networks. The thing I'd really love is reverse engineering work on an RLA chat model, a reinforcement learning from human feedback. It feels like if we had just examples, we understood there that would just teach me a lot.
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