Staff ML Engineer, Perception Research

Neura Market

Mountain View (CA)

Hybrid

USD 251,000 - 310,000

Full time

4 days ago
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Job summary

Waymo is seeking a research scientist to advance multimodal LLMs and world models for 3D perception using camera, LiDAR and radar data. This hybrid role reports to a Principal Research Scientist and collaborates with engineering and research teams across Waymo.

The role emphasizes scalable training, distributed inference, and efficient model distillation, with hands-on work on Transformer architectures and cutting-edge ML techniques.

Qualifications

  • PhD or Masters in Computer Science, ML, Robotics or related field with 4+ years RL/Foundation Models.
  • Experience implementing scalable distributed training flows (Data parallel, FSDP, sharding).
  • Proficiency in JAX, Flax, and optionally TensorFlow/PyTorch.
  • Willingness to work with globally distributed inference infrastructure.
  • Hands-on experience optimizing training and inference of Transformer architectures.

Responsibilities

  • Conduct experimentation to train and deploy state-of-the-art Multimodal LLMs and World models for 3D Perception.
  • Partner with engineering and research teams to deploy models and workflows for continuous training.
  • Apply quantization, pruning, knowledge distillation, and efficient attention mechanisms.
  • Develop scalable data pipelines for Training & Eval from multiple sources.
  • Design evaluation frameworks for perception models.
  • Build infrastructure for large-scale model distillation and bulk-inference pipelines.
  • Experiment with model partitioning and sharding to improve scalability.
  • Build and maintain tools for performance analysis, profiling and debugging ML models.

Skills

Transformer optimization
World models
Quantization
Pruning
Knowledge distillation
Inference infrastructure
Sharding
Distributed training

Education

PhD in Computer Science, Machine Learning or Robotics
Masters in Computer Science, Machine Learning or Robotics

Tools

JAX
Flax
TensorFlow/PyTorch
Data parallel
FSDP
XManager

Job description

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 mission of the Waymo AI Foundations team is to develop machine learning solutions addressing open problems in autonomous driving, towards the goal of safely operating Waymo vehicles in dozens of cities and under all driving conditions. As part of our work, we also initiate and foster collaborations with other research teams in Alphabet. AI Foundations areas that we are currently focusing on include reinforcement learning, learning from demonstration, generative modeling, Bayesian inference, hierarchical learning, and robust evaluation.

This role follows a hybrid work schedule and reports to a Principal Research Scientist.

You will
  • Conduct comprehensive experimentation to train and deploy state-of-the‑art Multimodal LLMs and World models to perform 3D Perception using sensor information from Camera, LiDAR and Radar..
  • Partner effectively with engineering and research teams across Waymo to deploy new models, and implement efficient workflows for model development and continuous training on new front-filled data.
  • Apply and develop techniques such as quantization, pruning, knowledge distillation, and efficient attention mechanisms.
  • Develop and maintain scalable data pipelines for Training & Eval to process data from multiple sources.
  • Design and implement evaluation frameworks for perception models.
  • Develop infrastructure for large‑scale model distillation and bulk‑inference pipelines for teacher models.
  • Experiment with different model partitioning and sharding strategies to improve scalability and efficiency.
  • Build and maintain tools for performance analysis, profiling (e.g., xprof), and debugging of ML models.
You have
  • PhD or Masters in Computer Science, Machine Learning, Robotics, or a similar technical field, with 4+ years of industry or post‑doc research experience in Reinforcement Learning or Foundation Models.
  • Proficiency in implementing model training flows in a scalable, distributed and performant manner such as Data parallel, FSDP and other sharding approaches.
  • Proficiency in JAX, Flax, and potentially TensorFlow/PyTorch.
  • A willingness to work with complexity of globally distributed inference infrastructure.
  • Hands on experience with optimizing the training and inference of Transformer architectures
We prefer
  • PhD in Computer Science, Machine Learning, or Robotics, with a research focus on Reinforcement Learning, Foundation Models, or Multi‑Modal learning.
  • Substantial involvement in and contributions to high impact industry AI projects.
  • Experience in generative models for domains such as world models, images, videos, 3D, using techniques such as diffusion or autoregressive models.
  • Experience contributing to frameworks and libraries that improve training speed and scalability (e.g., JAX, Gemax, XManager)
Disclosure for WA Based & Remote Roles

In accordance with Washington state law, we are highlighting our comprehensive benefits package, which is available to all eligible US based employees. Benefits for this role include:

Health, dental, vision, life, disability insurance Retirement Benefits: 401(k) with company match Paid Time Off: 20 days of vacation per year, accruing at a rate of 6.15 hours per pay period for the first five years of employment Sick Time: 40 hours/year (statutory, where applicable); 5 days/event (discretionary) Maternity Leave (Short-Term Disability + Baby Bonding): 28-30 weeks Baby Bonding Leave: 18 weeks Holidays: 13 paid days per year

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

$251,000 — $310,000 USD

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