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Machine Learning Engineer II

Uber

$167,000 - $185,500
Aug 13, 2025
San Francisco, CA, US
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The Marketplace Signals team at Uber is responsible for building and optimizing foundational marketplace signals that power user experiences and drive marketplace efficiency.

Requirements

  • 2 years of experience in software engineering with an emphasis on data-driven methodologies, deep learning, and online experimentation
  • Strong problem-solving skills, with expertise in ML methodologies
  • Experience in applying ML, statistics, or optimization techniques to solve large-scale real-world problems (e.g. ads tech, recommender systems)
  • Experience in ML frameworks (e.g. Tensorflow, Pytorch, or JAX) and complex data pipelines; programming languages such as Python, Spark SQL, Presto, Go, Java
  • 3+ years of experience in software engineering specializing in applied ML methods
  • Experience in designing and crafting scalable, reliable, maintainable and reusable ML solutions using deep-learning techniques and statistical methods.

Responsibilities

  • Develop and optimize ML models to enhance key marketplace signals (e.g., ETA predictions, supply availability metrics, demand forecasts).
  • Collaborate with cross-functional teams (Pricing, Matching, Driver Incentives, etc.) to ensure marketplace signals are effectively utilized.
  • Improve operational efficiency by building a centralized, scalable system for marketplace signals that serves multiple use cases.
  • Leverage cutting-edge ML techniques (deep learning, probabilistic modeling, reinforcement learning, etc.) to continuously refine marketplace signals.

Other

  • B.S. in Statistics, Mathematics, Computer Science, or Machine Learning
  • Detail-oriented, ownership and truth-seeking mindset.
  • Values and produces analytic evidence and insight, as well as applying them to improve technical solutions.
  • Experience working in a cross-functional and/or cross-business projects, partnering with Product, Scientists, and cross-org leads to shape the team's strategies
  • Master's degree in Computer Science, Engineering, Mathematics or related field