JoFunction AI

An AI division with a quality bar

AI treated as a product line with evaluation, cost and latency as requirements.

Client
JoFunction
Disciplines
AI systems, Evaluation, Product design
Technology
Evaluation harnesses, Retrieval systems, Model routing
  • Evaluation results across a change
  • Confidence surfaced in the interface
  • Retrieval and context design
  • Evaluation results across a change
  • Confidence surfaced in the interface
  • Retrieval and context design

Overview

JoFunction AI is the division behind our own AI products and the intelligent features inside everything else we build.

The challenge

The gap between a convincing demo and a dependable product is almost entirely measurement. Without it, every change is a guess and every regression is invisible until a user finds it.

Strategy

Make evaluation the first deliverable. A representative set drawn from real inputs, an agreed definition of a correct answer, and a harness that runs on every change.

Design

Interfaces state what the system is confident about and what it is not, and always leave a path to a human for anything consequential.

Engineering

Retrieval and context design come before model choice. Cost per request and end-to-end latency are tracked as product metrics, and regressions block release the same way a failing test does.

Outcome

An AI practice where quality is a measurement rather than an opinion, applied to our own products and to client work.

Technology

  • Evaluation harnesses
  • Retrieval systems
  • Model routing

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