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NXP SemiconductorsPosted 1 month ago

Silicon Validation & AI/ML Architect

On-sitePune, Maharashtra, India

Full TimeSenior LevelDoctorate Or Professional DegreeEnterprise

Job Summary

Lead silicon validation and AI/ML architecture for SoC, MCU, and connectivity product development, driving large technical initiatives across pre-silicon (simulation, emulation, FPGA) and post-silicon validation phases. Execute system-level validation, security, and functional safety concepts while performing debug and root-cause analysis across hardware, firmware, and software domains. Develop scalable validation automation frameworks using expert-level Python and C/C++, leveraging CI/CD, remote labs, and cloud-based infrastructures to optimize test coverage and engineering productivity. Apply AI/ML to failure analysis, root-cause prediction, and test optimization, defining an AI-first validation strategy. Requires 10+ years of semiconductor industry experience and a Master's or higher degree in Electrical, Computer, or related engineering fields.

Required Qualifications

  • M.S./M.Tech/Ph.D. in Electrical Engineering, Computer Engineering, Computer Science, Artificial Intelligence, Machine Learning, or related field
  • 10+ years of semiconductor industry experience
  • Strong background in MCU, MPU, SoC, or Connectivity product development
  • Proven experience in silicon bring-up, post-silicon validation, system validation, and product qualification
  • Demonstrated leadership in driving large technical initiatives and cross-functional programs
  • Deep understanding of: SoC architecture
  • Deep understanding of: Embedded systems
  • Deep understanding of: Silicon validation methodologies
  • Deep understanding of: System-level validation
  • Deep understanding of: Security and Functional Safety concepts
  • Pre-silicon (simulation, emulation, FPGA) and post-silicon validation
  • Expertise in debug and root-cause analysis across hardware, firmware, and software domains
  • Expert-level Python development
  • Strong C/C++ programming skills
  • Experience developing scalable validation automation frameworks
  • Knowledge of CI/CD, remote labs, cloud-based validation, and board farm infrastructures
  • Ability to define and execute an AI-first validation strategy

Desired Qualifications

  • Experience applying AI/ML to: Failure analysis
  • Experience applying AI/ML to: Root-cause prediction
  • Experience applying AI/ML to: Test optimization
  • Experience applying AI/ML to: Coverage analysis
  • Experience applying AI/ML to: Engineering productivity
  • Knowledge of Digital Twin technologies and model-based validation approaches

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