Senior Machine Learning Engineer, Vehicle Perception
Palo Alto, CA
- Pay
$140,000–230,000/year · Base — pay source
Experience in self-driving challenges (Perception, Prediction, Mapping, Localization, Planning, Simulation). The base pay for this position ranges from $140,000 - $230,000 a year. Your base salary is one part of your total compensation. We offer a base salary, short term and long term incentives, and a comprehensive benefits package. The total compensation offered to an employee will be dependent upon the individual's skills, experience, qualifications, location, and level.
Read the full posting- Work setup
- Unconfirmed
- Employment
- Unconfirmed
What you’ll work on
Full postingWork in a high-velocity environment and employ agile development practices.
Collaborate closely with teams such as Perception, Motion Planning, Simulation, Infrastructure, and Tooling to drive unified solutions.
Work in a hybrid workspace, with the requirement to be present in our Nihonbashi (Japan), Palo Alto (California), or Ann Arbor (Michigan) offices three days per week.
From the employer’s posting
Be a champion of the scientific method and critical thinking in inventing state-of-the-art deep learning solutions Work in a high-velocity environment and employ agile development practices. Collaborate closely with teams such as Perception, Motion Planning, Simulation, Infrastructure, and Tooling to drive unified solutions.
Work in a high-velocity environment and employ agile development practices. Collaborate closely with teams such as Perception, Motion Planning, Simulation, Infrastructure, and Tooling to drive unified solutions. Work in a hybrid workspace, with the requirement to be present in our Nihonbashi (Japan), Palo Alto (California), or Ann Arbor (Michigan) offices three days per week.
Collaborate closely with teams such as Perception, Motion Planning, Simulation, Infrastructure, and Tooling to drive unified solutions. Work in a hybrid workspace, with the requirement to be present in our Nihonbashi (Japan), Palo Alto (California), or Ann Arbor (Michigan) offices three days per week. MINIMUM QUALIFICATIONS
What you’ll bring
All qualificationsCore experience
- 3+ years of experience with Python, any major deep learning framework (PyTorch preferred), and software engineering best practices
- Experience with offboard, auto-labeling, or "data-engine" pipelines, including mining, curation, active learning, and ground-truth-free evaluation for large-scale datasets.
- 3+ years of experience with deep learning approaches such as supervised/unsupervised learning, transfer learning, multi-task learning, and/or deep reinforcement learning.
- Hands-on experience with vision-language models (VLMs), world models, video prediction, or latent dynamics models for autonomous systems or robotics.
- 3+ years of experience covering machine learning workflows, data sampling and curation, pre-processing, model training, ablation studies, evaluation, deployment, and inference optimization.
- Experience leveraging foundation models across multiple platforms and sensor setups, including distilling larger models into efficient real-time variants.
Qualification wording
3+ years of experience with Python, any major deep learning framework (PyTorch preferred), and software engineering best practices
Experience with offboard, auto-labeling, or "data-engine" pipelines, including mining, curation, active learning, and ground-truth-free evaluation for large-scale datasets.
3+ years of experience with deep learning approaches such as supervised/unsupervised learning, transfer learning, multi-task learning, and/or deep reinforcement learning.
Hands-on experience with vision-language models (VLMs), world models, video prediction, or latent dynamics models for autonomous systems or robotics.
3+ years of experience covering machine learning workflows, data sampling and curation, pre-processing, model training, ablation studies, evaluation, deployment, and inference optimization.
Experience leveraging foundation models across multiple platforms and sensor setups, including distilling larger models into efficient real-time variants.
Education & alternatives
MINIMUM QUALIFICATIONS - MS or PhD in Machine Learning, Computer Vision, Robotics or related quantitative fields, or equivalent industry experience. - 3+ years of experience with Python, any major deep learning framework (PyTorch preferred), and software engineering best practices
Tools in this posting
- Python
- PyTorch
- C++
Source — Tool mentions in context
- MS or PhD in Machine Learning, Computer Vision, Robotics or related quantitative fields, or equivalent industry experience. - 3+ years of experience with Python, any major deep learning framework (PyTorch preferred), and software engineering best practices - 3+ years of experience with deep learning approaches such as supervised/unsupervised learning, transfer learning, multi-task learning, and/or deep reinforcement learning.
- Deep understanding of runtime complexity, distributed/cloud ML infrastructure, data pipeline architecture,resource-aware optimization. - Comfortable in writing C++ code to help integrate with our autonomous vehicle platform. - Strong leadership skills to influence others and the team's technical strategy.
Benefits in the posting
Full benefits wording- ・Excellent health, wellness, dental and vision coverage
- ・A rewarding 401k program
- Our Commitment
From the employer’s posting.
Job description
TEAM
WHO ARE WE LOOKING FOR?
RESPONSIBILITIES
- Senior Lead the design and development of perception foundation models for autonomous vehicles, unifying diverse sensor data for scalable 3D scene understanding.
- Deploy scalable and efficient ML models on our autonomous vehicle platform.
- Integrate modern technologies with rigorous safety standards while maintaining cost efficiency.
- Significantly contribute to development of needed components for end-to-end ML training and deployment, from data strategy to optimization and validation.
- Be a champion of the scientific method and critical thinking in inventing state-of-the-art deep learning solutions
- Work in a high-velocity environment and employ agile development practices.
- Collaborate closely with teams such as Perception, Motion Planning, Simulation, Infrastructure, and Tooling to drive unified solutions.
- Work in a hybrid workspace, with the requirement to be present in our Nihonbashi (Japan), Palo Alto (California), or Ann Arbor (Michigan) offices three days per week.
MINIMUM QUALIFICATIONS
-
MS or PhD in Machine Learning, Computer Vision, Robotics or related quantitative fields, or equivalent industry experience.
-
3+ years of experience with Python, any major deep learning framework (PyTorch preferred), and software engineering best practices
-
3+ years of experience with deep learning approaches such as supervised/unsupervised learning, transfer learning, multi-task learning, and/or deep reinforcement learning.
-
3+ years of experience covering machine learning workflows, data sampling and curation, pre-processing, model training, ablation studies, evaluation, deployment, and inference optimization.
-
Experience working with large-scale foundation models, including pretraining, multimodal architectures, self-supervised learning approaches.
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Deep understanding of runtime complexity, distributed/cloud ML infrastructure, data pipeline architecture,resource-aware optimization.
-
Comfortable in writing C++ code to help integrate with our autonomous vehicle platform.
-
Strong leadership skills to influence others and the team's technical strategy.
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Strong communication skills with the ability to communicate concepts clearly and precisely.
NICE TO HAVES
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Published research at top-tier conferences (NeurIPs, CVPR and similar).
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Proven track record of deploying ML models at scale in self-driving or related fields.
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Experience with offboard, auto-labeling, or "data-engine" pipelines, including mining, curation, active learning, and ground-truth-free evaluation for large-scale datasets.
-
Hands-on experience with vision-language models (VLMs), world models, video prediction, or latent dynamics models for autonomous systems or robotics.
-
Experience leveraging foundation models across multiple platforms and sensor setups, including distilling larger models into efficient real-time variants.
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Familiarity with production-level coding and deployment onto embedded platforms, optimizing for latency and hardware constraints.
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Experience in self-driving challenges (Perception, Prediction, Mapping, Localization, Planning, Simulation).
Your base salary is one part of your total compensation. We offer a base salary, short term and long term incentives, and a comprehensive benefits package. The total compensation offered to an employee will be dependent upon the individual's skills, experience, qualifications, location, and level.
Employment type
Employee
Your next step
- Have your CV and examples of relevant work ready.
- Check the listed location, eligibility and core experience before starting.
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Source & posting history
Source notes
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- Pay
Experience in self-driving challenges (Perception, Prediction, Mapping, Localization, Planning, Simulation). The base pay for this position ranges from $140,000 - $230,000 a year. Your base salary is one part of your total compensation. We offer a base salary, short term and long term incentives, and a comprehensive benefits package. The total compensation offered to an employee will be dependent upon the individual's skills, experience, qualifications, location, and level.
- Location & working pattern
Palo Alto, CA
- Collaborate closely with teams such as Perception, Motion Planning, Simulation, Infrastructure, and Tooling to drive unified solutions. - Work in a hybrid workspace, with the requirement to be present in our Nihonbashi (Japan), Palo Alto (California), or Ann Arbor (Michigan) offices three days per week. MINIMUM QUALIFICATIONS
- Work authorization
No clear work-authorization passage found. Eligibility is unconfirmed.
- Status in our records
- Active
- First seen by us
- Aug 13, 2026
- Recorded sightings
- 48
- Last seen by us
- Oct 8, 2026
These dates show when we found the listing. Check the employer’s website to confirm it is still accepting applications.
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