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AI Embedded Software Engineer - Connected Devices

Job in Seattle, King County, Washington, 98127, USA
Listing for: Axon
Full Time position
Listed on 2026-02-20
Job specializations:
  • Software Development
    AI Engineer, Machine Learning/ ML Engineer, Embedded Software Engineer, Software Engineer
Salary/Wage Range or Industry Benchmark: 60000 - 80000 USD Yearly USD 60000.00 80000.00 YEAR
Job Description & How to Apply Below
Position: Staff AI Embedded Software Engineer - Connected Devices

Join Axon and be a Force for Good. At Axon, we’re on a mission to Protect Life. We’re explorers, pursuing society’s most critical safety and justice issues with our ecosystem of devices and cloud software. Like our products, we work better together. We connect with candor and care, seeking out diverse perspectives from our customers, communities and each other.

Life at Axon is fast‑paced, challenging and meaningful. Here, you’ll take ownership and drive real change. Constantly grow as you work hard for a mission that matters at a company where you matter.

Your Impact

As a Staff Embedded Software Engineer, you will lead critical software engineering initiatives and set the strategic technical direction across multiple embedded product lines, including body‑worn cameras, in‑car cameras, stationary cameras, drones, and emerging connected device solutions. Your role involves defining and significantly advancing embedded software architectures and ensuring system‑wide excellence in stability, scalability, security, and performance.

You will proactively identify technical opportunities and risks, guiding architectural decisions to future‑proof our products against complex operational environments. Your strategic oversight will involve collaboration with executives, directors, managers and cross‑functional teams, deeply influencing Axon’s broader software engineering organization. Your mentorship will uplift engineers across multiple teams, driving Axon’s mission‑critical standards and technical excellence.

In this role, you will also shape Axon’s approach to applied artificial intelligence on connected devices, influencing how AI models are trained, deployed, evaluated, and deployed across the device and cloud ecosystem. You will help define scalable and responsible AI architectures that balance model performance, operational constraints, safety, and real‑world reliability, ensuring AI‑driven capabilities can be trusted in mission‑critical environments.

What You’ll Do

Location:

Seattle or Boston or Scottsdale (hybrid)

Reports To:

Sr Engineering Manager

  • Define and significantly advance embedded software architectures for Axon’s current and future connected device products, including AI‑enabled systems spanning on‑device inference and cloud‑assisted workflows.
  • Lead the technical direction for AI‑enabled capabilities across connected devices, including collaboration on large‑scale model training, data strategy, deployment, and iterative improvement in production, across multiple product lines.
  • Partner with research, product, and platform teams to explore and integrate emerging AI approaches, including foundation models and multimodal systems, shaping Axon’s medium and long‑term AI strategy for connected devices.
  • Establish and enforce Axon‑wide standards for embedded software and AI system design, including reliability, scalability, safety, observability, and lifecycle management.
  • Identify and mitigate risks associated with AI systems, including model failure modes, data drift, and operational edge cases, and drive architectural decisions that ensure safe and reliable behavior in real‑world conditions.
  • Provide executive‑level guidance and mentorship, significantly enhancing the capabilities and technical decision‑making of the embedded software engineering teams.
  • Continuously improve software engineering practices and drive excellence through strategic retrospectives, planning sessions, and innovation cycles.
What You Bring
  • 12+ years of professional software development experience, with extensive expertise in C/C++, Go, Python, or comparable systems programming languages, including significant experience building AI‑ and data‑intensive systems.
  • Deep, demonstrated expertise in embedded systems architecture, firmware integration, and device‑level software engineering, combined with hands‑on experience deploying and optimizing AI inference workloads on constrained edge platforms (MCUs, SoCs, NPUs).
  • Proven experience designing, training, and operating machine learning models at scale, including ownership of data pipelines, model evaluation, and iterative improvement in production environments.
  • Practical experience with…
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