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HomeCompaniesWaymoMachine Learning Engineer, Runtime & Optimization

Machine Learning Engineer, Runtime & Optimization

Waymo · Mountain View, California, USA · Remote · Active · $213,000–$263,000 / year · Greenhouse

Job facts

FieldValue
CompanyWaymo
TitleMachine Learning Engineer, Runtime & Optimization
Normalized title-
Department / teamSys Intel and Machine Lrng (SQT)
LocationMountain View, CA, United States
Work modelRemote / Remote
Employment type-
Salary$213,000–$263,000 / year
Statusactive
ATS providerGreenhouse
Posted / first seen2025-01-10 / 2026-05-29
Changed / last seen2026-06-06 / 2026-06-06

Related slices

PageWhat it containsOpen
Company jobsActive postings from Waymo.Open
Company breakdownsRole, location, ATS, and work model facets for this company.Open
ATS provider jobsActive postings observed through Greenhouse.Open
Provider filtered searchThe same provider as a filtered job collection.Open
City jobsActive postings in Mountain View.Open
Department jobsActive postings in Sys Intel and Machine Lrng (SQT).Open
Work model jobsActive Remote postings.Open
Lifecycle eventsOpen, update, close, and reopen events for this posting.Open
Original postingCanonical source or apply URL captured from the ATS.Open

Linked records

CompanyWaymo
Source44b26b6c-8dfd-437f-a75f-2aba3142363b
ATS providerGreenhouse

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 ML Platform team at Waymo provides a set of tools to support and automate the lifecycle of the machine learning workflow, including feature and experiment management, model development, optimization and monitoring. These efforts have resulted in making machine learning more accessible to teams at Waymo, including Perception, Planner, Research and Simulation. We are looking for engineers with ML software or ML systems expertise to help us improve compute performance on both cloud and car. You'll work across the entire ML stack from the system perspective, from efficient deep learning models, model compression, ML software (e.g. JAX, XLA, Triton, and CUDA), to . You will be pleasantly challenged with deploying Waymo ML models on limited computation resources. In this hybrid role, you will report to the Senior Manager of Runtime and Optimization. You will: Lead the collaboration with the world-class Waymo ML scientists in perception, planner, research and simulation. Identify opportunities in both systems and models to make ML workloads faster. Lead projects from proposals through execution by developing junior engineers. Analyze and improve ML system workloads on both cloud and self-driving cars . Apply model optimization, efficient deep learning techniques and ML software improvements to Waymo's ML systems. You have: M.S. in CS, EE, Deep Learning or a related field 2+ years of experience as a technical lead, including writing project plans, engaging with customer teams, mentoring, responsible for goals & execution, reporting status. 5+ years of experience developing solutions in ML systems or ML software stack (Pytorch/JAX/TF, runtime libraries, ML compiler). Deep understanding of ML system architecture, performance analysis and tools. Strong Python or C++ programming skills We prefer you have one or more of the following: PhD in CS, EE, Deep Learning or a related field. Familiarity with the HW architecture of ML hardware accelerators (e.g., GPU/TPU). Deep knowledge of model optimization or efficient deep learning techniques for foundation models or LLM. Experience with GPU HW or TPU HW and related system software. #LI-Hybrid 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 $213,000 — $263,000 USD

Full job record

Job IDf10190d5eb4d265649c03fbf3c7a4498dbb06244
Org ID3fcf3bd1-54bc-4952-918e-d9d9f3354837
Source ID44b26b6c-8dfd-437f-a75f-2aba3142363b
Board ID44b26b6c-8dfd-437f-a75f-2aba3142363b
Providergreenhouse
Provider Job Key6506008
TitleMachine Learning Engineer, Runtime & Optimization
Normalized Title
Statusactive
Activeyes
Location TextMountain View, California, USA
DepartmentSys Intel and Machine Lrng (SQT)
Team
Employment Type
Workplace Typeremote
Remote Policyremote
CountryUnited States
RegionCA
CityMountain View
Salary RawSalary Range $213,000 — $263,000 USD
Salary Min213,000
Salary Max263,000
Salary CurrencyUSD
Salary Periodyear
Source URLhttps://careers.withwaymo.com/jobs?gh_jid=6506008
Apply URLhttps://careers.withwaymo.com/jobs?gh_jid=6506008
First Seen At2026-05-29 22:40:52Z
Last Seen At2026-06-06 20:03:15Z
Last Checked At2026-06-06 20:03:15Z
Last Changed At2026-06-06 07:32:55Z
Inactive At
Source Posted At2025-01-10 17:42:06Z
Source Updated At2026-06-04 18:47:38Z
Raw Payload Uris3://job-postings-prod-raw-590183727216/raw/provider=greenhouse/board=waymo/date=2026-06-06/2026-06-06T20-03-14-482Z-9ae82cf0fe9f70799413abab7bb6e36d8ef075138c44691cb24f99899f7f0674.json
Event Fields
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  "active_status": "active"
}
Parsed Structured
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Extensions
{}
Native Structured
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}
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