Sr. Robotics Engineer, Motion Planning

Posted 14 Days Ago
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Austin, TX, USA
In-Office
Senior level
Artificial Intelligence • Information Technology • Robotics • Automation
The Role
Lead motion planning and trajectory optimization for a high-DOF manipulator, turning planned paths into time-optimal, dynamically feasible, safe trajectories. Own path planning architecture, integrate perception, validate performance in simulation and hardware, define metrics, benchmark approaches, and mentor engineers to improve cycle time and reliability.
Summary Generated by Built In
Join Contoro Robotics – Revolutionizing Warehouse Automation with Cutting-Edge Robotics

At Contoro Robotics, we're on a mission to solve labor challenges through advanced robotic solutions. Headquartered in Austin, TX, our fast-growing startup is transforming the supply chain industry with our flagship warehouse automation technology. Our team is made up of top-tier experts in robotics, AI, and logistics, working together to push the boundaries of automation.

We’re looking for talented and ambitious individuals to join us on this journey—helping shape the future of robotics while growing alongside a world-class team. If you're passionate about innovation, problem-solving, and making a real-world impact, we want to hear from you!

Senior Robotics Engineer, Motion Planning

Contoro Robotics is an Austin-based company building autonomous truck-unloading robots for warehouse operations. We deploy reliable, high-throughput robotic systems that handle heavy, unstructured freight in real logistics settings every day.

The Role

We are looking for a Senior Robotics Engineer to lead the next phase of motion-performance improvement for our robot arm. You will be the technical lead for motion planning and trajectory generation, owning how we turn planned motion into fast, smooth, dynamically feasible trajectories under real hardware constraints. Your focus is reducing cycle time while maintaining safety and payload stability, using strong fundamentals in kinematics, dynamics, constrained optimization, and hardware-backed performance validation. This is a senior individual-contributor role: you set technical direction for motion planning, own the hardest trajectory-optimization problems, and mentor other engineers, working closely with the autonomy team.

Responsibilities

Trajectory Optimization

  • Own trajectory generation and time parameterization: turn planned paths into time-optimal, dynamically feasible trajectories that minimize cycle time while respecting velocity, acceleration, jerk, and torque limits of the arm and payload.

  • Drive the next generation of our motion performance through advanced time parameterization, optimization-based motion (optimal control, QP/NLP), and payload-aware planning that meaningfully increases throughput.

  • Ensure smooth, jerk-limited motion that maintains payload stability and hardware safety, and robustly handle near-singularity and joint-limit edge cases without stalls or unsafe motion.

Path Generation and Planning Architecture

  • Own geometric path planning for a high-DOF manipulator moving boxes through cluttered, partially occluded container environments.

  • Evaluate and evolve the planning architecture and toolchain (e.g., MoveIt, OMPL, CHOMP/TrajOpt), making the build, adopt, and extend decisions for the planning stack.

  • Integrate perception outputs (container frame, box poses, occupancy) into the planning scene, reasoning about collision objects such as container walls, ceiling, and neighboring boxes.

Performance Validation

  • Define motion-performance metrics, benchmark alternative approaches, and validate gains both in simulation and on real hardware.

  • Use physics-based and kinematic simulation to develop and de-risk changes before they reach the fleet.

Technical Leadership

  • Set technical direction for motion planning and drive multi-quarter improvements in cycle time and reliability.

  • Mentor junior and mid-level engineers and raise the team's bar on motion-planning craft, testing, and reliability.

  • Collaborate across autonomy, perception, controls, and robot software to deliver end-to-end motion that is both fast and reliable across diverse box configurations.

Qualifications

Experience: 5+ years of professional experience in motion planning, trajectory optimization, or manipulator control, with production or real-hardware deployment and a track record of owning motion performance end-to-end.

Education: B.S. or M.S. in Robotics, Computer Science, Mechanical/Electrical Engineering, or a related field (or equivalent industry experience).

Technical Skills:

  • Strong grounding in classical trajectory generation and time-parameterization methods (e.g., TOTG/TOPP-RA, Ruckig, S-curve profiles), with the ability to derive, adapt, and implement them in production systems.

  • Deep grasp of manipulator kinematics and dynamics - forward/inverse kinematics, collision checking, velocity/acceleration/jerk and torque constraints, and singularity and joint-limit handling for 6/7-DOF arms.

  • Background in optimization-based motion (optimal control, QP/NLP-based trajectory optimization).

  • Deep proficiency in C++ (modern standards), Python, and ROS 1 or ROS 2.

  • Experience validating cycle-time and reliability improvements on real hardware, backed by simulation.

Soft Skills:

  • Strong problem-solving and data-driven decision-making; able to own ambiguous, high-impact problems and decompose them into actionable work.

  • Excellent communication - able to present complex technical concepts clearly to cross-functional teams and mentor other engineers.

Nice to Have
  • Hands-on expertise with MoveIt and motion planning frameworks (OMPL, RRT/RRT-Connect/PRM, CHOMP/TrajOpt).

  • Experience with industrial manipulators (e.g., KUKA) and real-time joint control.

  • Experience planning for multi-object or multi-pick manipulation.

  • Experience optimizing for throughput or cycle time in a production robotics or logistics setting.

  • Experience with GPU-accelerated or learning-based motion planning in addition to classical methods.

  • Experience with physics-based or kinematic simulation for planning validation (Isaac Sim, Gazebo, MuJoCo, Bullet).

*Recruitment Agencies: Please do not contact our employees regarding this role. We partner with a select group of approved recruiting firms and do not accept unsolicited outreach or candidate submissions.

Skills Required

  • 5+ years professional experience in motion planning, trajectory optimization, or manipulator control with production or real-hardware deployment
  • B.S. or M.S. in Robotics, Computer Science, Mechanical/Electrical Engineering, or related field (or equivalent industry experience)
  • Proficiency in modern C++
  • Proficiency in Python
  • Experience with ROS 1 or ROS 2
  • Strong grounding in trajectory generation and time-parameterization methods (e.g., TOTG/TOPP-RA, Ruckig, S-curve profiles)
  • Deep knowledge of manipulator kinematics and dynamics, collision checking, singularity and joint-limit handling for 6/7-DOF arms
  • Background in optimization-based motion (optimal control, QP/NLP-based trajectory optimization)
  • Experience validating cycle-time and reliability improvements on real hardware, backed by simulation
  • Strong problem-solving, data-driven decision-making, communication, and mentoring skills
  • Hands-on experience with MoveIt, OMPL, CHOMP, TrajOpt, or similar planning frameworks
  • Experience with industrial manipulators (e.g., KUKA) and real-time joint control
  • Experience planning for multi-object or multi-pick manipulation
  • Experience optimizing throughput or cycle time in production robotics/logistics
  • Experience with GPU-accelerated or learning-based motion planning
  • Experience with physics-based or kinematic simulation for validation (Isaac Sim, Gazebo, MuJoCo, Bullet)
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The Company
HQ: Austin, Texas
35 Employees
Year Founded: 2022

What We Do

Contoro Robotics is an Austin-based robotics startup that is revolutionizing industrial automation with AI-powered robots, focused on automating the unloading of floor-loaded trailer and shipping containers from trucks. Their pioneering human-in-the-loop (HITL) model ensures over 99% success in real-world applications, bridging the gap between AI limitations and the commercial viability of advanced robotics solutions.

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