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Member of Technical Staff - Synthetic Data & Data Scaling @ Prometheus

USHybridFull-time
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About this role

About the RoleThis role owns the question of what our models learn from: how we generate, filter, weight, and scale training data across pretraining and midtraining. You will design and run synthetic data pipelines at scale, build rigorous methods to measure whether a data intervention actually improves the model, and run the scaling and ablation experiments that decide what goes into the next training run.

The work is end to end: from a hypothesis about data, to a generation or curation pipeline, to a controlled training experiment, to a verdict that changes the recipe.

What You'll DoDesign and run synthetic data generation pipelines at scale, spanning pretraining and midtraining data mixes

Build filtering, weighting, and curation methods that shape what data the model actually sees

Develop rigorous evaluation methods to determine whether a given data intervention measurably improves the model, not just correlates with improvement

Design and execute scaling law and ablation experiments that inform decisions on the next training run's data recipe

Own the full loop: hypothesis, pipeline, controlled experiment, verdict, recipe change

Partner closely with pretraining, evals, and infra teams to translate data decisions into training outcomes

What We're Looking ForStrong track record in large-scale data work for LLM training: synthetic data generation, data curation, filtering, or mixing at pretraining or midtraining scale

Experience designing and interpreting scaling law or ablation experiments, with the statistical rigor to separate signal from noise

Comfort owning a problem end to end, from experimental design through to a recommendation that changes the training recipe

Strong software engineering fundamentals for building and operating data pipelines at scale

Prior experience at a frontier lab or similar large-scale training environment preferred

Why This Role MattersData is one of the highest-leverage levers on model quality, and this role sits at the center of deciding what that lever does. The decisions made here directly shape what the next generation of models learns from.

Skills

PrometheusR&D

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