Product Manager (AI Hardware)

Posted Yesterday
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San Francisco, CA, USA
In-Office
Mid level
Artificial Intelligence • Software • Analytics
The Role
Design and run performance benchmarks for GPUs, TPUs and custom inference silicon; develop evaluation methodology and cost/throughput models; analyze inference economics; partner with chipmakers; produce reports and visualizations; extend benchmarking stack and use AI-native workflows to inform deployment and procurement decisions.
Summary Generated by Built In

Job Description – Product Manager (AI Hardware)

Location: San Francisco (on-site at our offices)

About Artificial Analysis

Artificial Analysis is the leading independent AI benchmarking company. We support labs, engineers and enterprises to understand AI capabilities and make critical decisions about their AI strategies. We are the go-to authority for understanding AI, from AI labs and enterprises to media, investors, and policymakers. Our benchmarks don’t just measure the cutting edge of AI, they are actively shaping the frontier.

Our benchmarks and analysis are trusted by hundreds of thousands of users and are the go-to reference for leading AI labs including OpenAI, Google, Meta, NVIDIA and Anthropic, and major publications including the Wall Street Journal, Bloomberg, the Financial Times and The Economist.

We are a team of 40+, on track to double by end of year, backed by Nat Friedman (GitHub, Meta), Daniel Gross (SSI, Meta), Andrew Ng (Google Brain, DeepLearning.ai, Amazon), Adam D’Angelo (Quora, Poe, OpenAI), Clem Delangue (Hugging Face) and other industry leaders.

The Opportunity

AI hardware is where the next decade of AI economics will be decided, and our hardware benchmarks are becoming the reference point for how the industry measures accelerators. We’re hiring into our hardware pillar to drive that coverage: benchmarking the GPUs, TPUs and custom silicon the AI industry runs on, and building the analysis that helps the industry understand them.

You’ll design and run performance benchmarks across accelerators and inference configurations, extend our hardware benchmarking stack, including AA-AgentPerf and our performance benchmarking suite, build cost and throughput models, and work directly with the leading chipmakers to benchmark their latest silicon. This is a technical, hands-on role at the intersection of silicon and AI, working directly with our founders and hardware pillar lead.

What You’ll Do

Benchmark AI Accelerators: Design and execute performance benchmarking across GPUs, TPUs and custom inference silicon, measuring throughput, latency and price-performance the way the industry actually deploys

Build Evaluation Methodology: Develop and maintain the frameworks that define how AI hardware performance and efficiency are measured, extending products like AA-AgentPerf, from tokens per second and time-to-first-token to total cost of ownership

Analyze Inference Economics: Deeply understand how cost-per-token, utilization and hardware choice interact, and translate that into analysis the industry relies on for deployment and procurement decisions

Partner with Chipmakers: Work with the top hardware companies in the world, from NVIDIA, AMD and Google to the leading new accelerator companies, at a deep technical level: benchmarking their latest silicon, shaping methodology together, and setting the standards the industry measures by

Drive Strategic Analysis: Produce reports and data visualizations that communicate hardware performance and economics to technical and non-technical audiences

Become AI-Native: Embrace an AI-native workflow, using cutting-edge AI tools to generate leverage in a fast-changing industry and maintain our competitive edge in AI benchmarking

What We’re Looking For

You should come from the world of AI accelerators.

Backgrounds include: engineering, product, performance or technical roles at AI accelerator and inference hardware companies (e.g. Cerebras, Groq, SambaNova, d-Matrix, Etched, MatX, Tenstorrent or similar), GPU and accelerator teams at larger players (NVIDIA, AMD, Google, Amazon, Qualcomm), or inference infrastructure companies working close to the silicon.

Required:

• 3+ years of professional experience, including at least 2 years at an AI chip company (e.g. NVIDIA, Cerebras, SambaNova, Groq or similar)

• Strong analytical and critical thinking skills

• Proficiency in Python and data analysis

• Deep familiarity with AI accelerators and the inference software stack (e.g. CUDA, TensorRT, vLLM or similar serving frameworks)

• Understanding of inference economics: cost-per-token, utilization, and the trade-offs that drive real deployment decisions

• Genuine, demonstrable interest and knowledge of Frontier AI. We want people who have informed opinions about where AI is heading, not just people who use AI tools

Why Artificial Analysis?

Shape how AI gets built: The leading AI labs track our benchmarks and use them to guide their development priorities. Your work will directly influence the direction of AI.

Become a world expert in AI: You will evaluate every major model, across every major capability, as they are released. Very few roles offer this breadth of exposure to frontier AI.

Work with the most important players in AI: You’ll manage relationships with teams at the leading AI labs and major enterprises as a trusted, independent voice.

Join at a defining moment: We’re 40+ people, on track to double by end of year, backed by some of the most connected investors in AI. The people who join now will shape the product, the team, and the strategy as we scale.

Competitive compensation including equity

1

Skills Required

  • 3+ years of professional experience
  • At least 2 years at an AI chip company (e.g., NVIDIA, Cerebras, SambaNova, Groq)
  • Proficiency in Python and data analysis
  • Deep familiarity with AI accelerators and the inference software stack (e.g., CUDA, TensorRT, vLLM or similar)
  • Understanding of inference economics: cost-per-token, utilization, deployment trade-offs
  • Strong analytical and critical thinking skills
  • Genuine, demonstrable interest and knowledge of Frontier AI
  • Experience designing and executing hardware performance benchmarks
  • Experience working with chipmakers or hardware teams
  • On-site work in San Francisco
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The Company
47 Employees
Year Founded: 2023

What We Do

Artificial Analysis is an independent AI benchmarking and analytics company. It evaluates and compares artificial intelligence models and providers across output quality, pricing, throughput, speed, latency, and reliability. Its independent tests and bespoke analysis services help developers, enterprises, and technology decision-makers select and manage AI infrastructure with greater transparency, cost efficiency, and alignment with their specific performance requirements and operational needs.

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