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Datacenter AI Systems and Solutions Engineer, Sr

Job in San Diego, San Diego County, California, 92189, USA
Listing for: Qualcomm
Full Time position
Listed on 2026-06-30
Job specializations:
  • IT/Tech
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 162600 - 244000 USD Yearly USD 162600.00 244000.00 YEAR
Job Description & How to Apply Below
Position: Datacenter AI Systems and Solutions Engineer, Sr Staff

Company

Qualcomm Technologies, Inc.

Job Area

Engineering Group, Engineering Group >
Systems Engineering

Overview

As a leading technology innovator, Qualcomm pushes the boundaries of what's possible to enable next-generation experiences and drives digital transformation to help create a smarter, connected future for all. As a Qualcomm Datacenter AI Systems and Solutions Engineer, you will research, develop, optimize, and validate software, hardware, architecture, algorithms, and machine learning solutions that enable the deployment of cutting‑edge AI datacenter technology.

Qualcomm Solution Engineers collaborate across functional teams to meet and exceed system‑level requirements and standards. This is a great opportunity to innovate and develop leading‑edge products and solutions around best‑in‑class Qualcomm AI inference accelerators for data center, and hybrid AI applications.

Preferred Qualifications
  • Master’s or PhD in Engineering, Computer Science, Information Systems, Physics, or a related discipline
  • Strong proficiency in Python and experience with ML frameworks, APIs, REST services, and microservice‑based architecture
  • Hands‑on experience designing, deploying, and operating AI/ML systems in production
  • Solid understanding of Generative AI architectures, including transformers, diffusion models, and hybrid systems (LLMs, LVMs, embeddings)
  • Experience with large‑scale AI systems architecture, including microservices, distributed systems, event‑driven designs, and fault‑tolerant/resilient architectures
  • Practical experience with AI inference serving, performance optimization, and scalability across heterogeneous hardware
  • Experience with MLOps practices for AI application development, deployment, monitoring, and lifecycle management
  • Familiarity with automation and Dev Ops tooling, including Git Ops workflows, containerization (Docker), orchestration platforms (Kubernetes), and ML lifecycle tools
  • Strong problem‑solving skills with a customer and solution‑focused mindset
  • Experience with cluster schedulers and resource managers (e.g., Slurm, PBS) and workload orchestration is a plus
  • Experience with observability, monitoring, and debugging tools for ML pipelines and inference services
  • Proven ability to operate effectively in a large, matrixed organization, influencing across teams
  • Experience with fine‑tuning and optimization of GenAI models, including reinforcement learning techniques, is a plus
  • Well versed in open‑source development practices, collaboration, and code quality standards
  • Exposure to rack‑level orchestration, fleet management, and data center automation is a plus
Principal Duties and Responsibilities
  • Lead the development of end‑to‑end AI/ML solutions that integrate Qualcomm AI hardware, system software, and ecosystem components to deliver best‑in‑class AI inference performance, power efficiency, and scalability
  • Drive the design, development, deployment, and optimization of Generative AI and LLM‑based applications, with a focus on production readiness and inference efficiency
  • Contribute to and guide the implementation of model fine‑tuning, distillation, and optimization strategies tailored for deployment on target hardware
  • Apply deep systems‑level expertise to research, design, develop, simulate, validate, and optimize AI systems spanning hardware, system software, AI frameworks, and models, while ensuring system‑level requirements are met
  • Perform AI model benchmarking, workload characterization, and performance analysis to influence system requirements, hardware/software co‑design, and product direction
  • Serve as a technical lead for customer engagements, supporting AI model onboarding, inference optimization, deployment, and performance tuning
  • Own and drive system‑level architecture and design, including requirements definition, interface specifications, performance targets, and implementation of new systems or enhancements to existing platforms
  • Collaborate across cross‑functional teams (hardware, software, tools, frameworks, and product) to deliver features, validate AI system correctness, and ensure high‑quality execution
  • Stay current with advancements in AI/ML models, inference techniques, and…
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