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Machine Learning Engineer

claylabs · San Francisco

New
Senior 🇬🇧 English
Feature infrastructure Serving infrastructure Snowflake dbt Dagster

Job description

About the role

Clay is building a self‑learning revenue engine where data, ML and AI are core to the product. As a Machine Learning Engineer you will join the Learning Team to create intelligence features that understand customers, power recommendations and enable new AI products.

Key responsibilities

  • Design and ship learning loops that let Clay improve from user behavior and business data, delivering recommendation‑first experiences from prototype to production.
  • Help stand up the ML and data platform, including data‑lake foundations, serving infrastructure, and evaluation of new tools that accelerate the product vision.
  • Build evaluation systems and online monitoring to ensure learning features are trustworthy and positively impact user experience.
  • Partner with product teams across the company to make every surface smarter, maintaining a shared roadmap.

Required profile

  • 5+ years in machine‑learning engineering or ML‑heavy software engineering with production‑ready models and features.
  • Strong engineering fundamentals; you write production‑quality code and own the systems you build.
  • Experience with LLMs in production (prompting, evals, guardrails, fine‑tuning) and/or classical ML such as ranking, recommendations, and propensity models.
  • Background building data‑intensive systems: pipelines, feature infrastructure, retrieval and serving.
  • Pragmatic product sense, optimizing for end‑user experience and business impact.
  • Comfort with ambiguity while building platform components from the ground up.
  • Passion for AI, staying up‑to‑date with the latest innovations and tools.

Required skills

  • LLMs in production (prompting, evaluation, guardrails, fine‑tuning)
  • Classical ML techniques (ranking, recommendation, propensity modeling)
  • Data pipelines and feature infrastructure
  • Retrieval and serving systems
  • Modern data‑stack tools: Snowflake, dbt, Dagster

Questions fréquentes

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Source : ats:ashby

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Published 9 hours ago

Expires 1 month from now

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claylabs

San Francisco