Jobs · Engineering · Massachusetts

Machine Learning Engineer - Artist-First AI Music Lab

Spotify · Boston, MA · 3 days ago
EngineeringFull-time

What You’ll Do

  • Design, build, evaluate, and improve machine learning training and inference pipelines that power new AI-driven music experiences and help take them to fully scaled production-ready features.
  • Apply machine learning and prompt engineering knowledge across complex ML pipelines to support rich user experiences involving large language models.
  • Create evaluation frameworks, including LLM-as-judge pipelines, to measure quality and build fast feedback loops that enable rapid and confident iteration.
  • Partner with music subject-matter experts to bootstrap training and reference data, including synthetic generation, expert curation, and taxonomy design.
  • Build scalable systems that balance experimentation velocity with production rigor, ensuring strong performance, reliability, and latency at Spotify scale.
  • Collaborate closely with Data Science teams to connect evaluation frameworks with real-world usage signals and continuously improve model quality.
  • Contribute to technical direction and engineering best practices across model deployment, observability, experimentation, and production infrastructure.
  • Collaborate cross-functionally with engineering, product, design, and music industry partners to shape entirely new listening experiences for artists and fans.

Who You Are

  • Experienced in applying machine learning in production environments.
  • Hands-on experience working with large language models, prompt engineering, evaluation systems, and shipping LLM-driven features in production.
  • Experience building and maintaining production ML systems using Python, Java, Scala, or similar languages.
  • Experience with building large-scale data pipelines for sourcing, preparing, and evaluating training data.
  • Experience with cloud platforms such as GCP, AWS, Azure, or similar infrastructure environments.
  • Comfortable explaining machine learning concepts, assumptions, and trade-offs to both technical and non-technical audiences.
  • Experience building user-facing products and strong judgment around conversational AI and generative user experiences.
  • Care deeply about experimentation, iteration, and using data to guide product and engineering decisions.
  • Thrives in collaborative, cross-functional teams that move quickly, experiment often, and continuously learn.

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