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Lead AI Native Engineer

RoboForce

Milpitas, CAJob$95–210K/yrPosted 3mo agoStill listed 2 days ago

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At a glance

Compensation
$95–210K/yr
Location
Milpitas, CA
Work Authorization
Visa required • Visa sponsorship

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Job overview

RoboForce seeks a Lead AI Native Engineer to build vertical agents and a shared foundation, turning frontier models into production systems. The role involves hands‑on coding, architecture, and enabling agent development for industrial AI robotics, reporting directly to the co‑founder.

Skills & qualifications

RequiredNice to have

Skills

ObservabilityMachine LearningFailure AnalysisOrchestrationArtificial IntelligenceSoftware EngineeringApplied AIML SystemsFrontier Model APIsContext EngineeringRetrievalMemoryMulti‑Step WorkflowsEvaluationsRegression TestsFailure‑Analysis LoopsClaude CodeCodexCursorAgent SDKsMCP InfrastructureKnowledge GraphsRAGRoboticsAutonomous SystemsIndustrial Automation

Qualifications

5+ Years Software Engineering Experience5 Days/Week in-Office Collaboration

Benefits

Medical Insurance
Dental Insurance
Vision Insurance
401(k) Match

Full job description

Why RoboForce

RoboForce is an AI robotics company developing Physical AI–powered Robo-Labor for dull, dirty, and dangerous work. The company’s robots are engineered for demanding industrial environments, with a focus on real-world deployment and scalability.

We are hiring a Lead AI Native Engineer to build RoboForce’s vertical agents and shared agent foundation. Reporting to the co-founder, you will turn frontier models into systems for strategy and engineering. This is a hands-on technical leadership role: you will write code, set architecture, and enable agent development—not lead People programs or organizational transformation.

Responsibilities

  • Build vertical agents. Own end-to-end agents for high-value workflows across research, software, hardware, data, and operations—from problem definition through production use.

  • Establish the agent foundation. Build reusable primitives for models, tools, orchestration, context, memory, retrieval, permissions, human approval, and long-running execution.

  • Create the context layer. Connect agents to trusted data through APIs, pipelines, MCP servers, and integrations with clear provenance and access control.

  • Own evaluation and reliability. Build benchmarks, regression tests, tracing, monitoring, and failure-analysis loops across quality, latency, cost, security, and resilience.

  • Advance frontier agent usage. Evaluate new models, coding agents, SDKs, and patterns, then turn useful capabilities into maintainable systems rather than demos.

  • Support strategic initiatives. Help company leadership apply agents and analytical systems to market and customer intelligence, partnerships, fundraising, diligence, scenario analysis, and executive decisions.

  • Provide technical leadership. Set architecture and engineering standards, review designs and code, and create reusable patterns for the technical team.

Requirements

  • 5+ years in software engineering, applied AI, ML systems, or a related field, with strong zero-to-one technical judgment.

  • Experience at a frontier AI lab, leading AI company, or comparable team working at the edge of current model capabilities.

  • A track record shipping production agentic systems that real users depend on—not only prompts, prototypes, or demos.

  • Deep experience with frontier model APIs, tool use, orchestration, context engineering, retrieval, memory, and multi-step workflows.

  • Experience building evaluations, regression tests, observability, and production failure-analysis loops for AI systems.

  • Exceptional fluency with AI-native development workflows using Claude Code, Codex, Cursor, agent SDKs, or equivalent systems, with a rigorous understanding of where agents work and fail.

  • Strong product judgment: able to turn an ambiguous decision or workflow into a useful, secure, measurable system.

  • Requires 5 days/week in-office collaboration with the team.

Bonus Qualifications

  • Experience with post-training, model evaluation, inference, or research infrastructure at a frontier lab or model company.

  • Experience with MCP infrastructure, developer platforms, knowledge graphs, RAG, or secure enterprise integrations.

  • Background in robotics, autonomous systems, industrial automation, or another technically complex physical-world domain.

Benefits

  • Competitive stock options/equity programs.

  • Health, dental, and vision insurance, 401(k) plan.

  • Visa sponsorship and green card support for qualified candidates.

  • Lunches and dinners, a fully stocked kitchen, and regular team-building events.

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