Location: Montreal
About 1X
We’re building humanoid robots that work in home - doing the chores, handling the tasks, and giving people their time back. Simple, but it’s not.
To do this right, we have to solve robotics, AI, manufacturing - at the same time, at scale, in a form factor that has to be safe enough to live with your family. If you’re inspired by this, you’ll thrive here. We’ve been at this since 2014 and we’re at the point where the hard problems are behind us and the hard work is in front of us.
NEO is our flagship - a home robot designed to move, learn, and operate in the real world alongside real people. We’re not demoing it - we’re shipping it. We’re excited to meet you, if this excites you.
If you’ve spent your career working on problems that matter and want to see them actually reach the world - this is that moment. We’re scaling, we’re hiring with intention, and we need people who want to build something that will genuinely change how humans spend their time - safely creating abundance for all.
About the TeamThe Autonomy & Safety Engineering team is responsible for ensuring 1X robots operate safely, reliably, and predictably in real-world human environments. We develop the systems, architectures, and operational frameworks that enable humanoid robots to safely interact with people, homes, and dynamic physical spaces.
The Functional Systems Safety team plays a critical role in identifying, mitigating, and validating safety risks across autonomy, controls, hardware, software, and operational robotics systems.
Your CharterLead the development of functional safety architectures, hazard mitigation strategies, and systems-level safety engineering practices for 1X humanoid robots. This role is responsible for ensuring safety requirements are properly defined, implemented, validated, and operationalized across complex integrated robotics systems as 1X scales embodied AI deployments globally.
Key OutcomesDefine and implement scalable functional safety frameworks across robot hardware, autonomy, controls, and operational systems
Lead hazard analysis, FMEA, fault-tree analysis, and risk assessment efforts across integrated robotics platforms
Partner cross-functionally with Autonomy, Controls, Hardware, Software, Manufacturing, and Operations teams to ensure safety requirements embedded throughout the system lifecycle
Develop and validate safety mechanisms, fault detection systems, redundancy strategies, and operational fail-safe behaviors
Improve deployment readiness and operational reliability through rigorous safety testing, validation methodologies, and systems-level safety governance
Deep expertise in functional safety engineering, systems safety, robotics safety, or other safety-critical engineering domains
Strong systems-level thinking across hardware, software, autonomy, controls, and operational environments
Experience applying safety engineering methodologies such as FMEA, HARA, fault-tree analysis, STPA, or equivalent frameworks
Strong technical communication and cross-functional leadership skills in highly collaborative engineering organizations
Ability to drive ambiguous, large-scale technical initiatives in fast-moving startup environments
10+ years of experience in functional safety, robotics safety, autonomous systems, aerospace, automotive, industrial automation, or related safety-critical engineering fields
Experience designing and implementing functional safety architectures for complex integrated systems
Strong understanding of safety standards such as ISO 13849, IEC 61508, ISO 26262, IEC 62061, or equivalent frameworks
Experience working with robotics systems, controls systems, embedded systems, or autonomous platforms
Bachelor’s degree in Robotics, Electrical Engineering, Mechanical Engineering, Computer Science, Systems Engineering, or related technical field
Experience working on humanoid robots, autonomous vehicles, industrial robotics, aerospace systems, or embodied AI platforms
Familiarity with autonomy stacks, perception systems, motion planning, or controls engineering
Experience with simulation environments, safety validation tooling, or…
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