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Show HN: Jevstiller – Distill Jev into a local model, with a disagreement bound

67 points · 16 comments · tgluck

  1. tgluck · · focus · HN ↗
    Author here. This puts a proxy in front of repeated Jev classification calls. At first everything goes to Jev; from Jev's answers it trains a small head on frozen sentence embeddings, picks a confidence threshold with an exact finite-sample bound so that at most 2% of all requests get an answer Jev wouldn't have given, and then answers the confident share locally at ~15 ms on a CPU. A permanent 2% audit keeps checking; if agreement breaks, everything falls back to Jev and it retrains.

    Known limits: agreement is not accuracy (if Jev is wrong, so is the local model); coverage tracks how consistent Jev itself is (22% on noisy tweet tasks, 80% on news); it speaks Jev's API only, an OpenAI-compatible front is on the roadmap. Since 0.4.0 the guarantee can also cover "would Jev have been unsure", which matters if your code routes low-confidence answers to review. Apache 2.0.

    1. kodefreeze · · focus · HN ↗
      Isn't this against their ToS? Useful for hobby stuff.
      1. tgluck · · focus · HN ↗

        [dead]

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