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HomeCompaniesMay MobilityMachine Learning Engineer II

Machine Learning Engineer II

May Mobility · Remote, USA · Remote · Active · $160,000–$210,000 / year · Greenhouse

Job facts

FieldValue
CompanyMay Mobility
TitleMachine Learning Engineer II
Normalized title-
Department / teamAutonomy Engineering
LocationUnited States
Work modelRemote / Remote
Employment type-
Salary$160,000–$210,000 / year
Statusactive
ATS providerGreenhouse
Posted / first seen2026-04-30 / 2026-05-29
Changed / last seen2026-06-06 / 2026-06-06

Related slices

PageWhat it containsOpen
Company jobsActive postings from May Mobility.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
Department jobsActive postings in Autonomy Engineering.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

CompanyMay Mobility
Sourcee9c83773-187a-442c-8786-eb6674ff04ac
ATS providerGreenhouse

Description

May Mobility is transforming cities through autonomous technology to create a safer, greener, more accessible world. Based in Ann Arbor, Michigan, May develops and deploys autonomous vehicles (AVs) powered by our innovative Multi-Policy Decision Making (MPDM) technology that literally reimagines the way AVs think. Our vehicles do more than just drive themselves - they provide value to communities, bridge public transit gaps and move people where they need to go safely, easily and with a lot more fun. We’re building the world’s best autonomy system to reimagine transit by minimizing congestion, expanding access and encouraging better land use in order to foster more green, vibrant and livable spaces. Since our founding in 2017, we’ve given more than 500,000 autonomous rides to real people around the globe. And we’re just getting started. We’re hiring people who share our passion for building the future, today, solving real-world problems and seeing the impact of their work. Join us. Job Summary May Mobility is entering an exciting phase of growth as we expand our first-of-its-kind autonomous shuttle and mobility services across the nation. Launched in 2017 with a strong team of experienced roboticists and software engineers with decades of experience fielding robotic systems in the wild, May Mobility is looking to expand its team of robotics engineers with a background in robotics or autonomous vehicles. We are seeking ML-Oriented Software Engineers with experience in robotics applications. As part of our Autonomous Driving ML team, you will use your knowledge of Software and ML concepts to design and operate pipelines that allow May’s Autonomous Driving stack to improve quickly and reliably at scale. Essential Responsibilities Architect and operate data and training pipelines across cloud and cluster environments. Build and maintain distributed training and orchestration tooling. Design and maintain the data and metadata stores that back our training and evaluation workflows Skills and Abilities Success in this role typically requires the following competencies: Architect data and model parallelism training infrastructure for large data (>100TB) or large model (>100GB) applications Architecting and operating containerized/pipelined ML Training workloads, including GPU scheduling/autoscaling, dataloader design and experiment tracking. Building and maintaining CI/CD pipelines and infrastructure-as-code (e.g. Terraform). Working with relational and object stores, and high-throughput data formats for ML workloads. Qualifications and Experience Candidates most successful in this role typically hold the following qualifications or comparable knowledge or experience: Required Bachelor’s or Master’s degree in Robotics, Computer Science or a related field with strong mathematical and engineering foundations. A minimum of 2 years building ML-oriented infrastructure, platforms, or distributed systems in production. Proficiency in C++, Python and PyTorch with experience in Linux environments. Familiarity with basic concepts in Machine Learning (training loops, basic operators and architectures) Desirable Proficiency in Go or Rust. Familiarity with ML orchestration and experiment tooling such as Ray, Kubeflow, Airflow, MLflow, or Weights & Biases. Familiarity with distributed training frameworks (PyTorch DDP/FSDP, DeepSpeed). Familiarity with data pipeline and storage technologies (Spark, Parquet, object storage, feature/metadata stores). Familiarity with basic Perception and Planning concepts in Autonomous Driving. Physical Requirements Standard office working conditions which includes but is not limited to: Prolonged sitting Prolonged standing Prolonged computer use Travel required? - Low 5-10% Benefits and Perks Comprehensive healthcare suite including medical, dental, vision, life, and disability plans. Domestic partners who have been residing together at least one year are also eligible to participate. Health Savings and Flexible Spending Healthcare and Dependent Care Accounts available. Rich retirement benefits, including an immediately vested employer safe harbor match. Generous paid parental leave as well as a phased return to work. Flexible vacation policy in addition to paid company holidays. Total Wellness Program providing numerous resources for overall wellbeing Don’t meet every single requirement? Studies have shown that women and/or people of color are less likely to apply to a job unless they meet every qualification. At May Mobility, we’re committed to building a diverse, inclusive, and authentic workforce, so if you’re excited about this role but your previous experience doesn’t align perfectly with every qualification, we encourage you to apply anyway! You may be the perfect candidate for this or another role at May. Want to learn more about our culture & benefits? Check out our website ! May Mobility is an equal opportunity employer. All applicants for employment will be considered without regard to race, color, religion, sex, national origin, age, disability, sexual orientation, gender identity or expression, veteran status, genetics or any other legally protected basis. Below, you have the opportunity to share your preferred gender pronouns, gender, ethnicity, and veteran status with May Mobility to help us identify areas of improvement in our hiring and recruitment processes. Completion of these questions is entirely voluntary. Any information you choose to provide will be kept confidential, and will not impact the hiring decision in any way. If you believe that you will need any type of accommodation, please let us know. Note to Recruitment Agencies: May Mobility does not accept unsolicited agency resumes. Furthermore, May Mobility does not pay placement fees for candidates submitted by any agency other than its approved partners. Salary Range $160,000 — $210,000 USD

Full job record

Job IDda6ca8bd2e8e435b9171c3d18fccc04896911bac
Org ID17490801-958f-4b2e-bd94-15b262c3d30e
Source IDe9c83773-187a-442c-8786-eb6674ff04ac
Board IDe9c83773-187a-442c-8786-eb6674ff04ac
Providergreenhouse
Provider Job Key8187504002
TitleMachine Learning Engineer II
Normalized Title
Statusactive
Activeyes
Location TextRemote, USA
DepartmentAutonomy Engineering
Team
Employment Type
Workplace Typeremote
Remote Policyremote
CountryUnited States
Region
City
Salary RawSalary Range $160,000 — $210,000 USD
Salary Min160,000
Salary Max210,000
Salary CurrencyUSD
Salary Periodyear
Source URLhttps://job-boards.greenhouse.io/maymobility/jobs/8187504002
Apply URLhttps://job-boards.greenhouse.io/maymobility/jobs/8187504002
First Seen At2026-05-29 23:04:12Z
Last Seen At2026-06-06 07:35:35Z
Last Checked At2026-06-06 07:35:35Z
Last Changed At2026-06-06 07:35:35Z
Inactive At
Source Posted At2026-04-30 13:26:30Z
Source Updated At2026-06-05 16:00:36Z
Raw Payload Uris3://job-postings-prod-raw-590183727216/raw/provider=greenhouse/board=maymobility/date=2026-06-06/2026-06-06T07-35-35-327Z-75d6bf3d5e9f8fd0d0b91129cd2e0d22d7d8eada947861bba9b723c7f5bd7f73.json
Event Fields
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Parsed Structured
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Extensions
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Native Structured
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