Gravis Robotics is a high-growth Series A start-up backed by SoftBank, bringing Physical AI to the construction industry, turning heavy construction machines into autonomous robots.
Gravis began as an ETH Zurich spin-out, and our unique combination of learning-based automation and augmented remote control lets one operator safely conduct a fleet of earthmoving machines in a gamified environment.
Backed by deep robotics research and now deployed across multiple countries with leading construction and equipment partners, our team is rapidly growing to bring this technology to a trillion-dollar industry.
We recognize that excellent candidates come from diverse backgrounds with various combinations of skills. If you meet most of the core qualifications below, we highly encourage you to apply.
Core qualifications
2–5 years industry experience developing Reinforcement learning systems for control and/or planning and deploying them on real robots with a customer. If you only have experience with simulation, you’re most likely not a good fit for this position.
Experience with GPU accelerated simulation environments (e.g. IsaacSim/IsaacLab, CARLA, MuJoCo)
Strong Python skills and experience with PyTorch or similar libraries
Proficiency in C++
Comfortable debugging real-world system behavior
Ability and willingness to travel as required by business projects.
Great-to-Have Skills & Experience
Experience with hydraulic machinery
Experience with supervised learning or imitation learning
Research experience in reinforcement learning
Experience deploying robotic systems at scale (e.g. hundreds of units)
Familiarity with ROS or similar robotics frameworks
Experience with feature-flagged deployments, staged rollouts, or long-lived platforms
Experience with data curation for ML applications
Experience guiding, mentoring, or leading junior colleagues, students, or project teams.
Familiarity with or interest in utilizing AI coding tools.
This Role is a Great Fit If
You are passionate about building systems that work reliably in the real world
You want to help build a long-lived excavation planning and control system intended to scale and positively impact the entire construction industry.
You are comfortable working with the realities of imperfect data and noisy measurements.
You have a keen interest in bridging the sim2real gap and understanding the differences between simulation and physical environments.
You are excited to help drive technical direction in a growing team transitioning from prototyping to the product stage.
You value a collaborative team culture rooted in thoughtful design, creative thinking, mutual respect, and pragmatism.
We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses and identifying potential inconsistencies or verification signals in application materials based on available information. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more information about how your data is processed, please contact us.
| Location | Austin, TX |
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