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Staff Machine Learning Engineer, Infrastructure

Waymo
$238,000-$302,000 USD
United States, New York, New York
Oct 14, 2025

Waymo is an autonomous driving technology company with the mission to be the world's most trusted driver. Since its start as the Google Self-Driving Car Project in 2009, Waymo has focused on building the Waymo Driver-The World's Most Experienced Driver-to improve access to mobility while saving thousands of lives now lost to traffic crashes. The Waymo Driver powers Waymo's fully autonomous ride-hail service and can also be applied to a range of vehicle platforms and product use cases. The Waymo Driver has provided over ten million rider-only trips, enabled by its experience autonomously driving over 100 million miles on public roads and tens of billions in simulation across 15+ U.S. states.

The Predictive Planning team (PrePlan) develops and deploys state-of-the-art machine learning solutions that predict the future state of the world and plan the Waymo Driver's behavior. Our mission is to transform Waymo's unprecedented scale of driving data into robust, generalizable, and performant deep neural networks. These models enable the autonomous vehicle to navigate complex environments safely and efficiently.

The team's work touches on all of the most exciting aspects of machine learning, including but not limited to Large Language Models (LLMs), Reinforcement Learnings (RL), and Vision understanding. In this role, you will ensure that our systems remain reliable in the face of this rapid, experiment-driven development.

In this hybrid role, you will report to a Technical Lead Manager.

You will:



  • Collaborate with machine learning engineers, data scientists, and infrastructure engineers to surface signals on model, component, and system performance
  • Develop, scale, and maintain CI/CD pipelines for automating metric computation, aggregation, and monitoring
  • Build data management tooling to improve reproducibility and scale analyses automatically as Waymo drives more miles
  • Collaborate with ML and product teams to define evaluation criteria and translate those into metrics and targets
  • Stay current with emerging technologies and trends in ML evaluation and metrics design
  • Be aware of best practices used in the Alphabet stack of ML technologies (e.g. TF, JAX, Flax, Beam etc)


You have:



  • B.S. in Computer Science, Math, or equivalent real-world experience
  • 7+ years building and maintaining high-scale distributed or ML inference systems
  • Coding and testing skills, specifically Python/C++
  • Familiarity with large-scale fleet management, testing, and deployment, e.g.:GCP/AWS/Kubernetes, Jenkins, GCS/S3, etc.
  • Familiarity with large-scale ML tools, e.g.: tf.serving/Torchserve, Kubeflow/Sagemaker Pipelines/Vertex AI Pipelines, etc.
  • Understanding of machine learning fundamentals and experience with popular ML frameworks such as JAX, PyTorch, or TensorFlow


We prefer:



  • Experience developing and maintaining evaluation pipelines for ML models
  • Experience deploying and supporting machine learning models for computer vision, natural language processing, robotics/motion planning, or recommendation systems
  • Experience supporting a large team of MLEs developing high-capacity, production-grade models and components
  • Strong understanding of metrics computation and regression detection at scale

The expected base salary range for this full-time position across US locations is listed below. Actual starting pay will be based on job-related factors, including exact work location, experience, relevant training and education, and skill level. Your recruiter can share more about the specific salary range for the role location or, if the role can be performed remote, the specific salary range for your preferred location, during the hiring process.

Waymo employees are also eligible to participate in Waymo's discretionary annual bonus program, equity incentive plan, and generous Company benefits program, subject to eligibility requirements.

Salary Range
$238,000 $302,000 USD
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