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Job Description

You Will…

  • Design and develop data-driven and machine-learned approaches to vehicle control problems, bringing modern ML to a domain traditionally solved with classical methods.

  • Develop learned models of vehicle behavior and dynamics, and integrate them into the closed-loop simulation.

  • Apply machine learning to improve how the controller adapts across vehicles and operating conditions.

  • Be part of a team of multidisciplinary Engineers and Research Scientists using an AI-first approach to enable safe self-driving at scale.

  • Own problems end to end, from conceptualization and offline experimentation through simulation and on-vehicle validation.

  • Build the data pipelines, evaluation metrics, and tooling needed to measure whether a learned approach outperforms the classical baseline.

  • Participate and share ideas in technical and architecture discussions, helping define how learning and classical control coexist in a safety-critical stack.

Qualifications:

  • MS/PhD or Bachelors degree with a minimum of 4 years of industry experience in Robotics, Controls, Mechanical/Electrical Engineering, Computer Science and/or similar technical field(s) of study.

  • Demonstrated depth in control theory and dynamic systems (e.g., MPC, optimal control, state estimation, system identification, kinematic and dynamic vehicle modeling).

  • Hands-on experience applying machine learning to a physical system, with real hardware in the loop rather than simulation alone.

  • Production-quality coding skill in Python and C++, and experience with deep learning frameworks such as PyTorch.

  • Solid problem solving skills using linear algebra, optimization, statistics & probability.

  • Ability to rapidly prototype and test new algorithms, and to design the experiments that prove whether they work.

  • Open-minded and collaborative team player with the willingness to help others.

  • Passionate about self-driving technologies, solving hard problems, and creating innovative solutions.

The US yearly salary range for this role is: $241,000 - $320,000 USD in addition to competitive perks & benefits. Waabi US Inc.’s yearly salary ranges are determined based on several factors in accordance with the Company’s compensation practices. Note: The Company provides additional compensation for employees in this role, including equity incentive awards and an annual performance bonus.
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  • Role Senior / Staff Software Engineer, ML-based Controls
  • Experience 8-9 years
  • Education Bachelor Degree
  • Work type Hybrid
  • Location United States
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Waabi
Automotive & Mobility · 100-200 Members · Toronto, Canada

Waabi develops autonomous driving for trucking, using an end-to-end learned system trained largely in a high-fidelity closed-loop simulator rather than on road miles alone.

Founded in Toronto in 2021 by Raquel Urtasun, formerly of Uber ATG.

All jobs at Waabi
Job Overview

Approx. salary range

209K – 249K

Our estimate — this employer did not publish a salary

Our estimate, not the employer’s. Worked out from the middle half of 168 comparable roles on Neural Jobs that did publish a salary, in the same field, country and experience band. The real figure for this job may be different.

Eligibility
United States Right to work in the United States required.
Workplace
Hybrid
Job Posted:
2 weeks ago
Job Type
Full Time
Education
Bachelor Degree
Experience
8-9 years

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