Company:
Field AI is transforming how robots interact with the real world. We are building risk-aware, reliable, and field-ready AI systems that address the most complex challenges in robotics, unlocking the full potential of embodied intelligence. We go beyond typical data-driven approaches or pure transformer-based architectures, and are charting a new course, with already-globally-deployed solutions delivering real-world results and rapidly improving models through real-field applications.
Hardware Team:
The Hardware Team at Field AI develops perception and compute payloads that power autonomous robotics systems in complex real world environments. Our work spans the full hardware stack designing and integrating sensing systems (LiDAR, camera, TOF, IMU, GPS), embedded compute (CPUs, GPUs, microcontrollers, Linux, ROS), electrical systems (power distribution, communication), and mechanical components (structures, thermal regulation, ingress protection). The team focuses on both development (research, design, prototyping, testing) and operations (production, testing, QA, debugging). We're a small, fast-moving team, and we care deeply about improving: 1) core capabilities, 2) system reliability, 3) system scalability. As a growing team we are also building operational systems and procedures from the ground up.
Mechatronics Role:
As a Mechatronics Engineer on the Hardware Team at Field AI, you will work at the intersection of mechanical and electrical engineering, designing the systems that package and integrate compute and perception suites onto large wheeled vehicle platforms. Your work will span mechanical CAD and packaging, PCB design, electromechanical/actuation systems, and full-lifecycle platform support — taking hardware from initial design through fabrication, bring-up, and field deployment. You will collaborate closely with mechanical, electrical, sensor, and autonomy teams to build tightly integrated solutions ready for deployment in challenging field environments. Additionally, while your focus spans mechanical, electrical, and electromechanical integration, you will likely contribute across all hardware domains.
What You Will Get To Do
1. Mechanical Design for Electronics Packaging
Mechanical CAD & Packaging: Design packaging and mounting solutions for electronics compute boxes used across a variety of large vehicle platforms. Collaborate with the team to integrate the sensor suite (cameras, LiDARs, GPS, IMU) with the platform.
Thermal & Structural Solutions: Collaborate with the team to investigate and solve thermal and structural challenges to keep autonomy hardware operational in rugged outdoor environments.
Fabrication & Integration: Work with external fab shops to produce mechanical hardware, then perform hands-on assembly, bring-up, and integration onto the wheeled platform.
2. Electrical Design
PCB Design: Design PCBs covering power regulation/distribution and wired communication systems, with senior electrical engineers available to pressure-test designs before they ship.
Sensor & Compute Integration: Evaluate and integrate sensors (cameras, LiDARs) and test new onboard computers, with mechanical-electrical integration (wire routing, PCB placement, thermal paths).
Bring-up & Validation: Bring up and validate electrical hardware, diagnosing failures to root cause with support from a team experienced in building these types of systems.
3. Mechatronics
Electromechanical Integration: Design and integrate actuation systems (motors, drives, actuators) with mechanical structures and electrical control systems.
Control Systems: Support tuning and validation of control loops (motion, actuation feedback) where mechatronic subsystems interface with platform-level controls.
Cross-Domain Troubleshooting: Diagnose issues that span mechanical, electrical, and firmware boundaries — a core skill for keeping integrated electromechanical systems field-ready.
4. Full Lifecycle Platform Support
Platform Integration: Integrate mechanical and electrical hardware onto a variety of large wheeled platforms, from CAD through installed, running hardware.
Field Deployment & Support: Support deployed hardware in the field, diagnosing real-world failures and feeding fixes back into the next design iteration.
Full-Stack Hardware: Contribute across full-stack robotics hardware, working closely alongside senior engineers from each discipline (mechanical, electrical, and embedded).
Autonomy Systems & Collaboration: Work closely with the autonomy team on hardware decisions (sensor placement, platform constraints) and on safety-critical systems.
Special Projects: Potentially make key contributions to special projects integrating multiple modalities, such as robotic arms with wheeled vehicles or multi-robot quadruped-wheeled collaborative efforts.
What You Have
Education: B.S., M.S., or Ph.D. in Mechatronics, Mechanical Engineering, Electrical Engineering, Robotics, or a related field.
Experience Level: We are recruiting across a wide range of experience levels from entry level engineers to senior and staff engineers.
Mechanical CAD: Proficient with SolidWorks or equivalent mechanical CAD platforms, with experience designing enclosures, mounts, and structural packaging.
PCB Design: Experience with PCB schematic and layout tools (KiCAD, Altium, or equivalent), particularly for power regulation and communication systems.
Electromechanical Systems: Hands-on experience with motors, actuators, drives, and feedback control systems.
Thermal & Structural Analysis: Familiarity with thermal mitigation strategies and structural design for rugged, outdoor-operating hardware.
Electromechanical Integration: Comfort working across the mechanical-electrical boundary — wire routing, PCB placement, thermal paths, ingress protection.
Fabrication: Experience working with external fab shops and hands-on assembly, bring-up, and integration of hardware.
Debugging: Comfort with hardware debugging tools (oscilloscopes, power monitors, logs, analyzers) to diagnose failures to root cause across mechanical, electrical, and firmware boundaries.
Systems Thinking: Ability to work across mechanical, electrical, and autonomy domains to deliver robust, integrated hardware.
Field Mindset: Willingness to support hardware in the field and iterate designs based on real-world failures.
What Will Set You Apart
Scaling: Experience taking systems from prototype to large scale production.
Field Environments: Experience developing systems for harsh field environments.
Deployed Robotics: Experience working on robotics deployed in real world settings such as autonomous vehicles, drones, or ruggedized robots.
Actuation Expertise: Background in motor control, servo systems, or robotic manipulation/locomotion hardware.
Multi-Modal Systems: Experience with robotic arms, manipulators, or multi-robot collaborative systems.
Systems Level Robotics: Fluency across mechanical, electrical, and software systems.
Skills Required
- B.S., M.S., or Ph.D. in Mechatronics, Mechanical Engineering, Electrical Engineering, Robotics, or a related field
- Proficiency with SolidWorks or equivalent mechanical CAD platforms
- Experience designing enclosures, mounts, and structural packaging
- Experience with PCB schematic and layout tools such as KiCad or Altium
- Hands-on experience with motors, actuators, drives, and feedback control systems
- Familiarity with thermal mitigation strategies and structural design for rugged outdoor hardware
- Experience with electromechanical integration, including wire routing, PCB placement, thermal paths, and ingress protection
- Experience working with external fabrication shops and performing hands-on hardware assembly, bring-up, and integration
- Experience using hardware debugging tools such as oscilloscopes, power monitors, logs, and analyzers
- Ability to troubleshoot across mechanical, electrical, and firmware boundaries
- Ability to work across mechanical, electrical, and autonomy domains
- Willingness to support hardware in the field and iterate designs based on real-world failures
- Experience taking systems from prototype to large-scale production
- Experience developing systems for harsh field environments
- Experience with deployed robotics, autonomous vehicles, drones, or ruggedized robots
- Background in motor control, servo systems, or robotic manipulation and locomotion hardware
- Experience with robotic arms, manipulators, or multi-robot collaborative systems
- Fluency across mechanical, electrical, and software systems
What We Do
FieldAI is pioneering the development of a field-proven, hardware agnostic brain technology that enables many different types of robots to operate autonomously in hazardous, offroad, and potentially harsh industrial settings – all without GPS, maps, or any pre-programmed routes.







