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Machine Learning Engineer – Automotive Cybersecurity

Job in San Diego, San Diego County, California, 92189, USA
Listing for: Qualcomm
Full Time position
Listed on 2026-09-12
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 158400 - 237600 USD Yearly USD 158400.00 237600.00 YEAR
Job Description & How to Apply Below

Company:

Qualcomm Technologies, Inc.

Job Area:

Engineering Group, Engineering Group >
Machine Learning Engineering

General

Summary:

We are seeking a Staff Machine Learning Engineer to drive AI/ML-based automation across Automotive SoC Cybersecurity and Safety engineering s role focuses on building intelligent, scalable solutions that improve engineering productivity, streamline cybersecurity and functional safety workflows, and enable automation across the full product development lifecycle.

The ideal candidate will contribute across a broad range of problem spaces — from AI-assisted engineering tools and automated compliance workflows, to future-looking capabilities in hardware security, functional safety, silicon verification, and AI-driven design automation. This role sits at the intersection of AI/ML, cybersecurity, functional safety, semiconductor engineering, and intelligent systems, contributing to a long-term automation vision aligned with automotive cybersecurity standards such as ISO/SAE 21434.

Technical

Skills and Expertise
  • Strong background in Machine Learning and Artificial Intelligence
  • Experience with LLMs, GenAI, and agentic AI systems or intelligent automation frameworks
  • Strong programming skills in Python, C++, or similar languages, with solid software engineering fundamentals
  • Experience building scalable, production-quality ML pipelines, model training workflows, or inference systems
  • Experience with knowledge systems, semantic search, retrieval-augmented generation (RAG), or workflow orchestration platforms
  • Familiarity with automotive cybersecurity or functional safety standards (e.g., ISO/SAE 21434, ISO 26262, UNECE WP.29) is a plus
  • Exposure to hardware security concepts, RTL design, design verification, or silicon validation workflows
Role and Responsibilities
  • Design and develop AI/ML-based automation solutions for cybersecurity and functional safety engineering workflows
  • Build intelligent systems for document understanding, review automation, and engineering productivity
  • Develop and deploy solutions leveraging LLMs, GenAI, and agentic AI frameworks
  • Contribute to knowledge automation platforms that support cross-project reuse and decision support
  • Build scalable, end-to-end automation pipelines spanning multiple engineering domains
  • Apply AI/ML to security analysis, compliance monitoring, and process optimization
  • Support development of future capabilities in hardware security analysis, verification automation, and AI-assisted design workflows
  • Collaborate with cross-functional teams across cybersecurity, functional safety, systems, software, design, and verification
Minimum Qualifications:

Bachelor's degree in Computer Science, Engineering, Information Systems, or related field and 4+ years of Hardware Engineering, Software Engineering, Systems Engineering, or related work experience.

OR

Master's degree in Computer Science, Engineering, Information Systems, or related field and 3+ years of Hardware Engineering, Software Engineering, Systems Engineering, or related work experience.

OR

PhD in Computer Science, Engineering, Information Systems, or related field and 2+ years of Hardware Engineering, Software Engineering, Systems Engineering, or related work experience.

Preferred Qualifications
  • Master's or PhD degree in Computer Science, Electrical Engineering, Artificial Intelligence, Machine Learning, or a related technical field
  • 5+ years of experience in machine learning, artificial intelligence, software engineering, or applied intelligent systems
  • 4+ years of work experience with Programming Language such as C, C++, Java, Python, etc.
  • Experience designing, developing, and deploying ML or AI-based solutions in production or engineering environments
  • Experience with agentic AI systems, multi-agent…
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