Qualcomm

Senior AI Performance Architect

Qualcomm$126K — $217K *
Telecommunications & Hardware
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Master's degree in Computer Science, Engineering, Information Systems, or related field
  • 3+ years Hardware Engineering experience defining architecture of GPUs or accelerators for AI training
  • In-depth knowledge of nVidia/AMD GPU capabilities and architectures
  • Familiarity with LLM architectures and their hardware requirements

Responsibilities

  • Understand ML network design trends through customer engagements and research
  • Determine hardware requirements for AI training systems in collaboration with customers
  • Analyze current accelerator and GPU architectures
  • Architect enhancements for efficient AI model training
  • Design flexible computational blocks supporting various data types and precision
  • Create optimized memory technology subsystems
  • Define performance models and perform pre-silicon performance predictions

Benefits

  • Competitive annual discretionary bonus program
  • Opportunities for annual RSU grants
  • Comprehensive benefits package supporting work-life balance
  • Commitment to workplace accessibility for individuals with disabilities
Full Job Description
Company:
Qualcomm Technologies, Inc.

Job Area:
Engineering Group, Engineering Group > Machine Learning Engineering

General Summary:

We are looking for AI Accelerator Architecture Engineers to drive functional, performance and power enhancements into the HW to enable state of the art training capabilities. AI inference and training systems must scale to a large number of accelerators, servers and racks. Our devices must be designed to scale to handle the largest of today's models.

The AI Architecture team is comprised of experts that span the full gamut from software architecture, algorithm development, kernel optimization, down to hardware accelerator block architecture and SOC design. The ideal candidate will augment the team by contributing to one or many of these areas.

Responsibilities:
  • Understand trends in ML network design through customer engagements and latest academic research and determine how this will affect both SW and HW design
  • Work with customers to determine hardware requirements for AI training systems
  • Analysis of current accelerator and GPU architectures
  • Architect enhancements required for efficient training of AI models
  • Design and architecture of:
  • Flexible Computational Blocks
    • Involving a variety of datatypes : floating point, fixed point, microscaling
    • Involving a variety of precision : 32/16/8/4/2/1
    • Capable of optimally performing dense and sparse GEMM, GEMV
  • Memory Technology and subystems that are optimized for a range of requirements
    • Capacity
    • Bandwidth
    • Compute in Memory, Compute near memory
  • Scale-Out and Scale-Up Architectures
    • Switches, NoCs, Codesign with Communication Collectives
  • Optimized for Power
  • Ability to perform Competitive Analysis
  • Codesign HW with SW/GenAI (LLM) requirements
  • Define performance models to prove effectiveness of architecture proposals
  • Pre-Silicon prediction of performance for various ML training workloads
  • Perform analysis of performance/area/power trade-offs for future HW and SW ML algorithms including impact of SOC components (memory and bus impacts)


Requirements:
  • Master's degree in Computer Science, Engineering, Information Systems, or related field
  • 3+ years Hardware Engineering experience defining architecture of GPUs or accelerators used for training of AI models
  • In-depth knowledge of nVidia/AMD GPU capabilities and architectures
  • Knowledge of LLM architectures and their HW requirements


Preferred Skills and Experience:
  • Knowledge of computer architecture, digital circuits and hardware simulators
  • Knowledge of communication protocols used in AI systems
  • Knowledge of Network-on-Chip (NoC) designs used in System-on-Chip (SoC) designs
  • Understanding of various memory technologies used in AI systems
  • Experience in modeling hardware and workloads in order to extract performance and power estimates
  • High-level hardware modeling experience preferred
  • Knowledge of AI Training systems such as NVIDIA DGX and NVL72
  • Experience training and finetuning LLMs using distributed training framework such as DeepSpeed, FSDP
  • Knowledge of front-end ML frameworks (i.e.,TensorFlow, PyTorch) used for training of ML models
  • Strong communication skills (written and verbal)
  • Detail-oriented with strong problem-solving, analytical and debugging skills
  • Demonstrated ability to learn, think and adapt in a fast-changing environment
  • Ability to code in C++ and Python
  • Knowledge of a variety of classes of ML models (i.e. CNN, RNN, etc)


Minimum Qualifications:
• Bachelor's degree in Computer Science, Engineering, Information Systems, or related field and 2+ 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 1+ year of Hardware Engineering, Software Engineering, Systems Engineering, or related work experience.
OR
PhD in Computer Science, Engineering, Information Systems, or related field.

Pay range and Other Compensation & Benefits:
$126,700.00 - $217,900.00

The above pay scale reflects the broad, minimum to maximum, pay scale for this job code for the location for which it has been posted. Even more importantly, please note that salary is only one component of total compensation at Qualcomm. We also offer a competitive annual discretionary bonus program and opportunity for annual RSU grants (employees on sales-incentive plans are not eligible for our annual bonus). In addition, our highly competitive benefits package is designed to support your success at work, at home, and at play. Your recruiter will be happy to discuss all that Qualcomm has to offer - and you can review more details about our US benefits at this link.

If you would like more information about this role, please contact Qualcomm Careers.

About Qualcomm

Qualcomm Ventures is the investment arm of Qualcomm Incorporated. Founded in 2000, Qualcomm Ventures is a corporate venture capital fund with over 150 active portfolio companies and more than 20 exits over a billion dollars, including 99 Taxis, Cruise Automation, Fitbit, Invensense, NQ Mobile, Waze, and more. As a global investor, Qualcomm Ventures helps connect entrepreneurs to the resources, relationships, and deep industry expertise they need to succeed in the mobile technology ecosystem.

Qualcomm Careers

Joining Qualcomm offers more than just a job opportunity; it's a gateway to a career infused with innovation, leadership, and growth. As a pivotal leader in the world of wireless technology, Qualcomm stands at the forefront of digital communication advancements. Our team of professionals is dedicated to pushing the boundaries of what's possible, making this an ideal time to become part of our global community.

Work You’ll Do

At Qualcomm, you will collaborate with some of the brightest minds in the industry, engaging in work that transforms the way the world connects, computes, and communicates. Our diverse team is driven by a shared passion for creating path-breaking wireless technologies that empower mobile ecosystems worldwide.

Innovate and Grow

Embrace the opportunity to innovate alongside leaders in the field and contribute to projects that have a global impact. Qualcomm is committed to fostering a culture of innovation and continuous improvement, ensuring that every team member has the opportunity to make a significant impact.

Professional Growth and Development

Qualcomm is dedicated to the professional growth of its employees, offering unparalleled benefits, diverse career paths, and extensive training programs that encourage professional and personal development. Whether you're looking for leadership roles or specialized technical positions, Qualcomm provides the resources and support to help you drive your career forward.

Diversity and Inclusion

We believe that a diverse workforce fuels our innovation and reflects our commitment to making a positive impact. Qualcomm’s inclusive culture and diversity training programs are designed to promote an environment where all employees can thrive.

Internship Programs

Start your career with Qualcomm through our dynamic internship programs. These opportunities allow you to apply your skills in real-world scenarios, providing a robust foundation for future employment. Internships at Qualcomm are characterized by meaningful projects and the chance to network with industry leaders.

Join Our Team

Explore the numerous job opportunities at Qualcomm, from engineering to marketing, and discover how your skills and interests align with our mission. We are continuously hiring creative and driven individuals who are ready to contribute to our culture of innovation.

Prepare for Your Interview

Ready to join our team? Prepare your resume to highlight your relevant experience and skills. Our interview process is designed to understand your capabilities and how they align with our goals at Qualcomm. We look for passionate, curious, and innovative team players who are ready to take the next step in their careers.

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Keep up to date with the latest at Qualcomm by following our careers blog. Gain insider perspectives and industry-leading insights that can help you navigate your professional journey.

Career Opportunities Await

At Qualcomm, your career is what you make of it. With support for your ambitions and a network of global professionals, the opportunities to advance and excel are nearly limitless. Join us and be part of a team that’s leading the world in next-generation technology.

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Learn more about Qualcomm
Size
45,000 employees
Market Cap
$122.5 billion
Industry
Net Income
$6.7 billion
Founded
1985
5 Year Trend
+14.7%
Revenue
$26.6 billion
NASDAQ

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