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Responsibilities include:


• Lead ML-based tool development to optimize engineering qualification (EQ) scheduling and

enable data-driven gap analysis.


• Drive LLM-based workflow automation initiatives across the reliability and engineering

program management organization.


• Support network integration of hardware reliability testers, including software development,

implementation, and configuration of hardware infrastructure.


• Collaborate on the development and implementation of computer vision-based algorithms for

reliability and quality assessments.


• Partner closely with cross-functional teams (reliability, software, data engineering,

infrastructure) to identify and implement automation opportunities.


• Provide technical leadership in defining scalable and sustainable solutions that support

engineering and test operations.

Key Qualifications


• Proven experience managing AI/ML-based engineering tools or platforms, particularly for

scheduling optimization, anomaly detection, or workflow automation.


• Hands-on experience working with Large Language Models (LLMs), including prompt design,

model integration, or automation of team workflows.


• Strong understanding of software development and data infrastructure, with experience

supporting network-connected hardware systems.


• Familiarity with computer vision algorithms and their application in engineering or testing

environments.


• Demonstrated ability to lead complex, cross-functional technical projects across diverse global

teams.


• Excellent problem-solving and analytical skills with a deep sense of ownership and technical

curiosity.


• Strong interpersonal and communication skills; able to drive alignment and engagement

across engineering, product, and infrastructure teams.


• Professional proficiency in both Chinese and English, with an ability to operate effectively in

bilingual environments