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AI Engineering Tech Lead

Job in Buckeye, Maricopa County, Arizona, 85326, USA
Listing for: TSMC - Taiwan Semiconductor Manufacturing Company Limited
Full Time position
Listed on 2026-09-30
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 180000 - 260000 USD Yearly USD 180000.00 260000.00 YEAR
Job Description & How to Apply Below

A job at TSMC Arizona offers an opportunity to work at the most advanced semiconductor fab in the United States. TSMC Arizona’s first fab will operate it’s leading-edge semiconductor process technology (N4 process), starting production in the first half of 2025. The second fab will utilize its leading edge N3 and N2 process technology and be operational in 2028. The recently announced third fab will manufacture chips using 2nm or even more advanced process technology, with production starting by the end of the decade.

America’s leading technology companies are ready to rely on TSMC Arizona for the next generations of chips that will power the digital future.

Build AI that delivers real manufacturing impact—from Arizona to TSMC’s global fab network.

TSMC Arizona is seeking a hands-on AI Engineering Tech Lead to lead the development and production deployment of AI solutions that improve manufacturing efficiency, quality, and engineering productivity.

You will partner with fab domain experts to turn complex operational challenges into reliable, scalable applications. Your work may span computer vision, anomaly detection, predictive analytics, robotics, reinforcement learning, generative AI and agentic AI
, selecting the right approach for each problem.

Based in Arizona, you will own local delivery while contributing reusable solutions and engineering practices across TSMC’s global manufacturing footprint.

Key Responsibilities
  • Lead multiple AI projects from concept to production. Translate manufacturing needs into technical specifications, delivery plans, and measurable business outcomes.
  • Stay hands-on. Design architectures, develop and review code, guide experimentation, troubleshoot failures, and resolve performance and reliability issues.
  • Lead and mentor engineers. Set technical direction, manage dependencies, and establish engineering standards across concurrent application projects.
  • Develop practical AI/ML solutions. Work with domain experts on data collection, labeling, model development, evaluation, and integration into engineering workflows and manufacturing systems.
  • Own production operations. Establish MLOps/LLMOps practices covering reproducibility, versioning, CI/CD, deployment, monitoring, model drift, incident response, and rollback.
  • Build trustworthy applications. Implement appropriate validation, access controls, traceability, and human oversight for systems supporting critical decisions and actions.
  • Scale successful solutions. Collaborate with global teams to share reusable components and deployment practices, adapting solutions to site-specific requirements.
Required Qualifications
  • Master’s degree in AI/ML, Computer Science, Industrial Engineering, Computer Engineering, Electrical Engineering, or a related technical discipline.
  • 5+ years of professional experience developing AI/ML applications, including substantial hands‑on responsibility for production deployment and ongoing operations.
  • Proven experience leading teams of at least 7 engineers
    , typically 7–10 or more, across multiple AI application projects.
  • A demonstrated record of taking AI solutions beyond prototypes into sustained production use, with measurable improvements in quality, productivity, reliability, or cost.
  • Strong applied expertise in one or more areas such as computer vision, anomaly detection, time-series modeling, predictive analytics, robotics, reinforcement learning, or generative AI
    , with the ability to guide work across adjacent domains.
  • Strong Python and software engineering skills
    , including experience with PyTorch or comparable ML frameworks, data pipelines, APIs, automated testing, and performance optimization.
  • Practical experience with containerization, Kubernetes, MLOps, and CI/CD
    , plus production…
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