Product Manager, Retrieval-Augmented Generation and Embeddings
- San Jose, California
- Onsite
- full time
- $163k–$236k/year
- Posted today
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About the role
MINIMUM QUALIFICATIONS:
* Bachelor's degree or equivalent practical experience.
* 5 years of experience in product management or a related technical role.
* 2 years of experience taking technical products from conception to launch
(e.g., ideation to execution, end-to-end, 0 to 1, etc).
* Experience integrating generative AI tools or LLM interfaces into workflows.
* Experience building and scaling developer platforms, developer-facing
APIs/SDKs, or general back-end infrastructure (e.g. for search or AI
applications).
PREFERRED QUALIFICATIONS:
* Master's degree in a technology or a business related field.
* 2 years of experience in software development or engineering.
* Experience with Large Language Models (LLMs), Retrieval-Augmented Generation
(RAG), and vector search.
* Ability to define user journeys and success metrics along with excellent
analytical skills.
* Exceptional cross-functional leadership skills with the ability to influence
without authority across engineering, research, and product areas.
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.
Large Language Models (LLMs) need access to fresh, specialized data to give
users helpful responses. Doing this at scale while keeping things flexible
enough to let developers try new ideas quickly involves bridging the gaps
between many infrastructure capabilities: chunking, inference, embeddings
retrieval, and more. You will work with stakeholders across the Context and
Understanding organization to make sure Google’s AI powered experiences can
leverage the Retrieval-Augmented Generation (RAG) setups to optimize cost,
quality, and latency.
Behind the scenes, RAG systems rely on vector (embeddings) search as a critical
technology to enable fast, cheap, semantic queries. You will also work with the
broader AI Foundations organization to guide the evolution of our embeddings
capabilities across a number of storage and serving systems.
The Core team builds the technical foundation behind Google’s flagship products.
We are owners and advocates for the underlying design elements, developer
platforms, product components, and infrastructure at Google. These are the
essential building blocks for excellent, safe, and coherent experiences for our
users and drive the pace of innovation for every developer. We look across
Google’s products to build central solutions, break down technical barriers and
strengthen existing systems. As the Core team, we have a mandate and a unique
opportunity to impact important technical decisions across the company.
Individual pay is determined by factors including job-related skills,
experience, and relevant education or training.
US: $163000 - $236000 (USD) + 15% bonus target + equity + benefits
Learn more about benefits at Google
[https://www.google.com/about/careers/applications/benefits/].
RESPONSIBILITIES:
* Partner with research teams across DeepMind, Research, and Core to advance
the next-generation RAG technologies at Google, and make them available
across the company.
* Partner with clients to unlock new business opportunities by resolving
critical bottlenecks in Google’s RAG technologies.
* Drive the horizontal product outlook and road map to ensure smooth and
efficient journeys across multiple products in the AI Foundations portfolio.
* Conduct client and external research to surface top client pain points and
emerging opportunities.
* Define and track success metrics for user value and developer velocity.
Skills
- Product Management
- Generative AI
- Large Language Models
- Retrieval-Augmented Generation
- Vector Search
- Developer Platforms
- APIs
- SDKs
- Back-end Infrastructure
- Cross-functional Leadership
- Analytical Skills
- Product Strategy
- Roadmap Planning
- Stakeholder Management
- Technical Product Launch
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