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Data Scientist II, ML Infrastructure

Data Scientist • Remote • Full-time • European Union Anywhere in the World, EU/EMEA

At Pinterest you will work on the science and systems behind ML measurement, feature understanding and causal inference at scale, as an individual contributor. Remote within the US.

Responsibilities

  • ▹Turn research-grade DS workflows (e.g. proxy metrics, staleness models) into production ML pipelines using Airflow, WandB and Ray, with reusable patterns
  • ▹Apply and productionize causal inference methods (propensity scoring, IPW, TMLE) on the production ML stack
  • ▹Build self-serve tooling so non-experts can derive rigorous causal insights
  • ▹Partner with ML engineers and product teams on better tooling, metrics and measurement methods
  • ▹Build data-driven frameworks from feature importance to content deindexing
  • ▹Design and build centralized ML platform tooling for feature and model creation, evaluation and trust

Requirements

  • ▹2+ years of hands-on experience as an applied scientist, ML engineer, research scientist or software engineer, with significant ML production experience
  • ▹Strong Python skills
  • ▹Experience with PyTorch or an equivalent deep learning framework
  • ▹Familiarity with distributed compute (Spark, Ray)

Soft skills

Cross-functional collaboration

About the company

Millions of people use Pinterest to find creative ideas and plan for the future. The company describes AI as a partner that amplifies creativity.

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