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What is Jev?

A fast decision model: give it state + typed questions, get structured decisions with probabilities — not generated prose.

Traditional LLM

Generate open-ended output

Input → "Write a detailed answer..."
  • Writes text and code
  • Open-ended output
  • Useful for synthesis
  • Can be expensive in loops
Jev · decision layer

Choose from a defined answer space

State + Question → Choice / Score / Boolean
  • Typed decisions
  • Probabilistic output
  • No free-form generation
  • Designed for high-frequency decisions
Three primitives

The mental model

Most Jev workflows can be expressed with a small answer space.

Choice

Select one option from a developer-defined list.

billing | technical | sales

Score

Rate against a defined rubric or ordered scale.

0 → 1 → 2 → 3

Boolean / Noul

Answer a constrained yes/no decision with probability.

yes 0.97 / no 0.03
Quick example

Support routing

State

"I was charged twice and need a refund today."

Question

Which team should handle this? billing · technical · sales · other
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