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JevMade field notes / Written guide

Train your own decision model with Unsloth

Unsloth's guide shows how to retrain a free AI model, such as Qwen or Gemma, so it chooses between answers you list and says how sure it is, in the style of Jev, Laya and Clef.

Original by Unsloth AI / @UnslothAIClassification

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Our summary

Some AI tools, called decision models, pick from a list of answers you give them instead of writing text, and say how sure they are. Jev is one. Unsloth's guide shows how to turn a free, downloadable language model, such as Qwen or Gemma, into a decision model of your own.

You collect examples: a piece of text, the questions to ask about it, and the right answers. Unsloth trains a small add-on that scores each answer, then uses examples it held back to adjust how sure the model says it is. Free online notebooks, or Unsloth's desktop app, walk through each step.

Unsloth reports big gains, such as a small Qwen model going from 36% to 73% correct on one test, but these are its own results. You still need a graphics card to run the finished model. Its app can answer requests sent to the name jev-latest, but that is your model, not Jev.

Key takeaways

  1. Decision models choose from answers you list and give a probability, instead of writing text.
  2. Unsloth retrains a free model on your own examples, then tunes how sure it says it is.
  3. The accuracy gains are Unsloth's own results; test the finished model on examples it has not seen.

Unsloth AI's documentation, linked from its X account on 9 October 2026 and last updated 10 October. Accuracy, memory and timing figures are Unsloth's own, and its suggested training settings differ between sections of the page. Laya and Clef are separate models that this recipe can also fine-tune further.

unsloth.ai

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