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HomeCompaniesPath RoboticsMachine Learning Engineer, Robot Learning, Loco-Manipulation

Machine Learning Engineer, Robot Learning, Loco-Manipulation

Path Robotics · Columbus, Ohio · Hybrid · Active · Greenhouse

Job facts

FieldValue
CompanyPath Robotics
TitleMachine Learning Engineer, Robot Learning, Loco-Manipulation
Normalized title-
Department / teamEngineering
LocationColumbus, OH, United States
Work modelHybrid / Hybrid
Employment type-
Salary-
Statusactive
ATS providerGreenhouse
Posted / first seen2026-04-28 / 2026-05-29
Changed / last seen2026-05-29 / 2026-06-22

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PageWhat it containsOpen
Company jobsActive postings from Path Robotics.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 Columbus.Open
Department jobsActive postings in Engineering.Open
Work model jobsActive Hybrid 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

CompanyPath Robotics
Source5b6d52b2-f272-4964-874f-0a58110025cc
ATS providerGreenhouse

Description

Build the Path Forward At Path Robotics, we’re building the future of embodied intelligence. Our AI-driven systems enable robots to adapt, learn, and perform in the real world closing the skilled labor gap and transforming industries. We go beyond traditional methods, combining perception, reasoning, and control to deliver field-ready AI that is risk-aware, reliable, and continuously improving through real-world use. Big, hard problems are our everyday work, and our team of intelligent, humble, and driven people make the impossible possible together. We are standing up a new Robot Learning team focused on whole-body loco-manipulation for precision tasks in heavy manufacturing. We are seeking a Machine Learning Engineer to join us as a founding member. You will be among the first ML engineers on a research stack that does not exist anywhere else in the field built around visual reasoning, learned action policies, and reinforcement-learning fine-tuning from real customer data. What You’ll Do Build the team's robot-learning stack from the ground up. This is a founding role; you are designing the training infrastructure, data pipelines, simulation environments, model architectures, and deployment workflows — not inheriting them. Multi-modal perception, scene understanding, and learned action generation work in tight coordination on the stack you help create. Stand up ML infrastructure — training pipelines, experiment tracking, data versioning, reproducible sim-to-real workflows. Train policies across manipulation, locomotion, and the whole-body control coupling between them. On legged platforms performing precision tasks, manipulation and locomotion are not separable — every arm motion shifts the centre of mass; the whole-body controller compensates in real time to maintain accuracy at the tool. Behavioural cloning, diffusion- and flow-matching action generation, reinforcement-learning fine-tuning. Cobots, industrial arms, and mobile platforms. Deploy in stages — through a phased rollout strategy that builds production trust over time. Every real-world execution accumulates training data for continuous improvement. Collaborate daily with mechanical engineers, perception engineers, robotics engineers, and manufacturing domain experts. Within-department rotation across home teams is expected. Who You Are Ph.D. or Master's degree in Robotics, Mechanical Engineering, Electrical Engineering, Computer Science, or a related field — or equivalent experience. 2+ years of hands-on robot learning experience. You have trained policies and deployed them on real robot hardware — not just in simulation. Sim-to-real transfer experience — built simulation environments, implemented domain randomisation, transferred policies to physical robots, debugged where it broke. Implementation experience with diffusion-based or flow-matching action policies for robots, and with action chunking. Reinforcement learning for robotics applied on real hardware — sample-efficient on-robot methods, residual RL on top of pretrained policies, on-policy fine-tuning of foundation policies. Strong programming skills in Python; PyTorch and ML training infrastructure at production level. Practical experience with NVIDIA Isaac Sim / Isaac Lab, MuJoCo, or equivalent. Comfort with physical robots — debugging, iterating, deploying. Strong communication skills, able to convey complex technical concepts to a diverse audience. Strongly Preferred: Edge inference on edge-class hardware (TensorRT, ONNX, FP16 / INT8 quantisation). Real-time on-robot deployment is a core requirement. Visual self-supervised representation learning experience on robot or 3D-vision tasks. Legged-robot or whole-body control experience — locomotion, manipulation on a floating base, or the integration between them on quadrupeds or humanoids. Physics-informed ML — hybrid models where learned components are constrained by known physics. Experience building ML pipelines or infrastructure in a team setting. Why You’ll Love Working Here Daily free lunch to keep you fueled and connected with the team Flexible PTO so you can take the time you need, when you need it Comprehensive medical, dental, and vision coverage 6 weeks fully paid parental leave, plus an additional 6–8 weeks for birthing parents (12–14 weeks total) 401(k) retirement plan through Empower Generous employee referral bonuses—help us grow our team! Who We Are At Path Robotics we love coming to work to solve interesting and tough challenges but also because our ideas are welcomed and valued. We encourage unique thinking and are dedicated to creating a diverse and inclusive environment. All qualified applicants will receive consideration for employment without regard to race, color, religion, gender, gender identity or expression, sexual orientation, national origin, genetics, disability, age, or veteran status. If you require a reasonable accommodation to participate in the application process or any part of the hiring process, please contact [email protected]. We are committed to providing equal access and will work with qualified individuals to ensure a fair and accessible hiring experience. We will respond to your request within 48 hours.

Full job record

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Org IDf79a1a17-3456-4942-8c72-66689834fb51
Source ID5b6d52b2-f272-4964-874f-0a58110025cc
Board ID5b6d52b2-f272-4964-874f-0a58110025cc
Providergreenhouse
Provider Job Key8501710002
TitleMachine Learning Engineer, Robot Learning, Loco-Manipulation
Normalized Title
Statusactive
Activeyes
Location TextColumbus, Ohio
DepartmentEngineering
Team
Employment Type
Workplace Typehybrid
Remote Policyhybrid
CountryUnited States
RegionOH
CityColumbus
Salary Raw
Salary Min
Salary Max
Salary Currency
Salary Period
Source URLhttps://boards.greenhouse.io/pathrobotics/jobs/8501710002?gh_jid=8501710002
Apply URLhttps://boards.greenhouse.io/pathrobotics/jobs/8501710002?gh_jid=8501710002
First Seen At2026-05-29 22:58:16Z
Last Seen At2026-06-22 07:40:53Z
Last Checked At2026-06-22 07:40:53Z
Last Changed At2026-05-29 22:58:16Z
Inactive At
Source Posted At2026-04-28 19:51:45Z
Source Updated At2026-04-28 19:51:45Z
Raw Payload Uris3://job-postings-prod-raw-590183727216/raw/provider=greenhouse/board=pathrobotics/date=2026-06-22/2026-06-22T07-40-53-071Z-804fba1e777d605ddbcf8ab00b5620422f48c547f7fac0743d165004561be406.json
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Extensions
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Native Structured
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