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Open nowPosted 11 days ago

Staff Hardware Engineer, Robotics Systems & Deployments

nidus-technologies5 open roles

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Your applicationOpen nowStaff Hardware Engineer, Robotics Systems & Deploymentsnidus-technologies · New York City
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This job: posted 11 days ago

The posting

ABOUT US

Nidus is building autonomous manufacturing systems powered by AI and robotics. U.S. manufacturers are under growing pressure to increase output while navigating workforce constraints, underutilized equipment, and increasingly complex supply chains. We believe the next generation of manufacturing will be enabled by more intelligent, flexible automation—systems that help people and machines work together to expand capacity and improve productivity.

We're building the intelligence layer that makes that possible.

Our team comes from the intersection of defense technology and AI. We've built and shipped products to DoD customers, and we bring deep experience across ML, robotics, product development, and defense.

We're a small, in-person team in New York City working on hard problems that matter. If you want to build the future of American manufacturing, we'd love to hear from you.

ABOUT THE ROLE

We are building vision-language-action models that enable robots to perform complex manipulation tasks in real-world environments. The quality, reliability, and scalability of the hardware used to collect data and deploy these systems are fundamental to our success.

We are looking for a Staff Hardware Engineer to define and lead the technical architecture for our robotic data-collection platforms, end effectors, camera systems, and customer workcells. You will own major hardware programs from early requirements and system architecture through validation, production, and fleet deployment.

This is a senior individual-contributor role with broad technical influence and a clear path to leadership. You will establish engineering standards, resolve complex cross-disciplinary tradeoffs, lead high-risk design efforts, and create reusable hardware platforms that can support new manipulation tasks, robot embodiments, and customer environments.

You will remain deeply hands-on—designing hardware, building prototypes, reviewing test data, and troubleshooting systems in the field—while also raising the technical bar across the organization through design reviews, mentorship, and long-range technical planning.

You will work closely with robotics, controls, machine learning, data operations, manufacturing, safety, and customer deployment teams.

WHAT YOU’LL DO

HARDWARE ARCHITECTURE AND TECHNICAL LEADERSHIP

- Define the technical architecture and long-term roadmap for robotic data-collection systems and customer-deployed workcells.

- Translate company, product, model-training, and customer requirements into scalable hardware platforms and subsystem specifications.

- Own system-level tradeoffs across mechanical design, sensing, controls, compute, safety, reliability, manufacturability, serviceability, cost, and deployment speed.

- Identify the highest-risk technical problems, establish validation strategies, and drive programs from ambiguous requirements to reliable deployed systems.

- Establish design principles, interfaces, qualification standards, documentation practices, and configuration-management processes across the hardware organization.

- Lead architecture reviews, design reviews, failure investigations, and technical readiness assessments for critical hardware programs.

- Serve as a technical authority for complex decisions spanning mechanical, electrical, optical, software, and operational domains.

- Mentor engineers and help raise the quality of system design, technical judgment, documentation, and root-cause analysis across the team.

DATA-COLLECTION SYSTEMS

- Architect robotic data-collection platforms that produce consistent, high-quality training data across operators, tasks, sites, and robot configurations.

- Partner with ML and data teams to determine how embodiment design, sensor placement, calibration, latency, repeatability, and hardware variation affect data quality and policy performance.

- Define system requirements for payload, workspace, stiffness, compliance, precision, visibility, ergonomics, cycle life, safety, and operator throughput.

- Develop modular architectures that allow new sensors, end effectors, robots, and task fixtures to be integrated without redesigning the entire platform.

- Establish instrumentation and telemetry strategies that make hardware health, configuration, calibration, and data-quality issues observable across the fleet.

END EFFECTORS AND MANIPULATION HARDWARE

- Lead the design and development of end effectors, including grippers, custom fingers, tool interfaces, compliant mechanisms, force-sensing elements, and quick-change systems.

- Translate manipulation-task requirements and policy failure modes into actionable hardware improvements.

- Develop reusable end-effector architectures that balance dexterity, robustness, sensing, manufacturability, weight, cost, and serviceability.

- Drive analytical and empirical validation of grasping performance, structural integrity, compliance, repeatability, wear, and lifecycle durability.

- Guide make-versus-buy decisions and evaluate commercial components, custom mechanisms, actuators, sensors, and manufacturing approaches.

WORKCELL AND CUSTOMER DEPLOYMENT

- Define reference architectures for complete robotic workcells incorporating robot arms, end effectors, cameras, compute, networking, power distribution, safety systems, fixtures, and operator interfaces.

- Lead technical discovery for customer deployments, including site surveys, task analysis, risk identification, and requirements definition.

- Resolve constraints involving layout, reachability, utilities, networking, lighting, environmental conditions, safety, workflow integration, and service access.

- Partner directly with customers and internal deployment teams during installation, commissioning, acceptance testing, troubleshooting, and system upgrades.

- Create deployment standards, acceptance criteria, maintenance strategies, spare-parts plans, and escalation procedures that enable systems to be supported at scale.

- Use lessons from field deployments to improve the core hardware platform and reduce installation time, service burden, and site-specific engineering.

WHAT WE’RE LOOKING FOR

- Bachelor’s degree in mechanical engineering, mechatronics, robotics, electrical engineering, or a related discipline—or equivalent practical experience.

- Typically 8+ years of experience developing complex mechanical, electromechanical, robotic, automation, or sensing systems.

- A track record of leading technically complex hardware programs from ambiguous requirements through architecture, detailed design, validation, production, and field deployment.

- Demonstrated ownership of systems containing interacting mechanical, electrical, optical, software, and operational elements.

- Deep proficiency with a modern 3D CAD platform such as SolidWorks, Onshape, Creo, or NX.

- Strong command of mechanical engineering fundamentals, including tolerance analysis, GD&T, structural design, materials, fasteners, bearings, actuators, cable management, and manufacturing processes.

- Experience designing production-quality parts and assemblies and creating drawings, bills of materials, assembly procedures, and configuration-controlled documentation.

- Hands-on experience integrating cameras, sensors, actuators, embedded compute, networking, and power systems.

- Experience designing verification, qualification, lifecycle, and reliability tests for complex hardware.

- Strong systems-engineering judgment and the ability to make clear tradeoffs among performance, schedule, reliability, cost, manufacturability, and serviceability.

- Experience leading design reviews, resolving cross-functional technical disagreements, and influencing engineering direction without relying on formal authority.

- Ability to communicate effectively with engineers, operators, suppliers, executives, and customers.

- Willingness to work hands-on with hardware and travel to customer sites as needed.

PREFERRED QUALIFICATIONS

- Experience developing robotic grippers, custom fingers, tool changers, compliant mechanisms, tactile or force-sensing systems, or other manipulation hardware.

- Experience architecting industrial robot, cobot, laboratory automation, warehouse automation, or machine-vision workcells.

- Experience developing hardware used specifically for robot learning, teleoperation, demonstration collection, or large-scale robotics datasets.

- Experience with machine safety and robotics standards such as ISO 10218, ISO/TS 15066, ANSI/RIA R15.06, or related customer-site requirements.

- Experience with DFMEA, fault-tree analysis, tolerance analysis, accelerated lifecycle testing, environmental qualification, and formal engineering change control.

- Experience managing technical relationships with strategic suppliers, contract manufacturers, and external system integrators.

Nidus Technologies is an equal opportunity employer, and qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender perception or identity, national origin, age, marital status, protected veteran status, or disability status.

We encourage candidates from all backgrounds to apply, even if you don't feel like you're a perfect fit. If you're passionate about contributing to our mission, we'd love to hear from you!

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