Group Product Manager, AI Hardware and Software Co-Design
- Mountain View, California
- Onsite
- full time
- $240k–$333k/year
- Posted 11 days ago
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About the role
MINIMUM QUALIFICATIONS:
* Bachelor's degree or equivalent practical experience.
* 10 years of experience in product management or related technical role.
* 5 years of experience taking technical products from conception to launch
(e.g., ideation to execution, end-to-end, 0 to 1, etc.).
* Experience with AI/ML foundations, LLM/ML serving infrastructure, hardware
accelerators, or silicon development.
* Experience working cross-functionally with engineering, research, and
infrastructure teams to launch technical products.
PREFERRED QUALIFICATIONS:
* Master’s degree or PhD in Computer Science, Electrical Engineering, or a
related technical field.
* Experience developing rich internal and external relationships, with a proven
ability to project future customer requirements in a rapidly evolving,
ambiguous landscape.
* Comprehensive knowledge of AI/ML architectures (e.g., Transformers, Mixture
of Experts) and inference performance metrics (e.g., TCO, TT80T, QPS).
* Deep technical understanding of the silicon/hardware development lifecycle
(EVT, DVT, PVT) and data center deployment constraints.
* Ability to discuss and resolve complex technical hardware, software, and
model co-design tradeoffs.
ABOUT THE JOB:
At Google, we put our users first. The world is always changing, so we need
Product Managers who are continuously adapting and excited to work on products
that affect millions of people every day.
In this role, you will work cross-functionally to guide products from conception
to launch by connecting the technical and business worlds. You can break down
complex problems into steps that drive product development.
One of the many reasons Google consistently brings innovative, world-changing
products to market is because of the collaborative work we do in Product
Management. Our team works closely with creative engineers, designers,
marketers, etc. to help design and develop technologies that improve access to
the world's information. We're responsible for guiding products throughout the
execution cycle, focusing specifically on analyzing, positioning, packaging,
promoting, and tailoring our solutions to our users.
The Research Compute Systems team in Google Research works at the frontier of AI
hardware-software co-design across Google. The team's mission is to improve key
compute system metrics through co-design across the AI stack (e.g., from data
center to chips to model to application).
The role involves both an ownership-mentality of products and programs while
also a willingness to pitch in wherever needed to move projects forward. In this
role, you will help define requirements and de-risk experimental paths. You will
require deep engagement with internal and external customers, developing quick
understanding of their workloads, helping to discuss strict technical tradeoffs,
and driving the product through critical hardware phases to pilot and general
availability.
Individual pay is determined by factors including job-related skills,
experience, and relevant education or training.
US: $240000 - $333000 (USD) + 25% bonus target + equity + benefits
Learn more about benefits at Google
[https://www.google.com/about/careers/applications/benefits/].
RESPONSIBILITIES:
* Define and execute the product strategy for your designated focus area,
making decisions about areas of investment and prioritizing/deprioritizing
features to keep cross-functional teams focused on outcomes.
* Partner with internal product areas and external customers to anticipate and
synthesize complex future requirements, translating them into hardware and
software specifications.
* Direct the resolution of difficult, ambiguous problems (e.g., model quality
vs. latency) through evidenced-based, data-driven arguments.
* Collaborate closely with engineering to determine optimal technical
implementation and scheduling. Drive the hardware through physical milestones
and establish project processes to ensure alignment across distributed teams.
* Utilize AI to enhance your personal impact, identify new ultra-specialized
product opportunities, and maintain a comprehensive working knowledge of the
AI-powered product development lifecycle.
Skills
- Product Management
- AI/ML Foundations
- LLM Infrastructure
- Hardware Accelerators
- Silicon Development
- Cross-functional Collaboration
- Product Strategy
- Data-driven Decision Making
- Hardware-Software Co-design
- Inference Performance Metrics
- Data Center Deployment
- Technical Tradeoffs
- Product Lifecycle Management
- Project Management
- Stakeholder Management
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