Job descriptions & requirements
Specific Responsibilities
Learner Supply & Instrumentation
- Build a repeatable pipeline of beta learners, engaging the right internal teams to keep them flowing — the constraint that gates everything else, and it rewards hustle over process.
- Instrument the AI products in partnership with the LLMOps Engineer — you instrument; they build the evals over what is captured.
The Experiment Loop
- Own the experiment loop — a backlog of the team’s biggest uncertainties, experiments designed against them, cycle time measured and shrinking.
- Close the loop: data reviewed, UX and learning validation captured, improvements shipped, and the next PoC out the door.
Skill Requirements - Essential
- Product experimentation: you have run it end-to-end, hypothesis, instrumentation, decision. A/B testing or structured product testing on a live product.
- Technical fluency: you can talk concretely about instrumenting a product, read AI-eval results, and hold your own with engineers. You don’t need to code daily.
- Operator ability: recruiting and coordinating real users, running a beta programme, and wrangling stakeholders.
- Desirable (not required): hands-on eval or analytics skills; EdTech experience.
Essential Traits for Success
- You have a scientific mindset. You know what an experiment can and can’t conclude, and your favourite experiments include ones that killed an idea you loved.
- You’d enjoy the question “how would you get 50 beta learners in two weeks with no budget?” enough to start answering it in the interview.
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