Principal Performance Modeling Engineer

Oho Group

San Francisco (CA)

On-site

USD 190,000 - 280,000

Full time

36 hours ago
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Job summary

Oho Group in the San Francisco Bay Area is seeking a Principal Performance Modeling Architect to lead the development of a system-level performance modeling platform for AI accelerator architectures. The role is highly technical and hands-on, focusing on model development and architecture evaluation to influence silicon decisions before tape-out.

You will build and extend analytical models, validate them against AI frameworks, and collaborate with architecture teams to ensure scalable, accurate

Qualifications

  • 5+ years' experience in performance modeling, computer architecture, or systems performance engineering.
  • Strong understanding of AI accelerators, GPUs, HPC systems, memory hierarchies and interconnects.
  • Experience developing analytical or first-principles performance models.
  • Knowledge of AI inference and training workloads and how they utilise compute, memory, and networking resources.
  • Strong Python development skills with experience building maintainable engineering tools.
  • Ability to analyse complex simulation results and influence architecture decisions through data-driven insights.
  • Excellent communication skills with the ability to explain technical concepts clearly.

Responsibilities

  • Own and develop a system-level performance modeling platform for AI accelerator and cluster architectures.
  • Build analytical models to predict performance, power, energy efficiency, and cost across different hardware designs.
  • Expand support beyond LLM inference to training, multimodal, and vision workloads.
  • Work closely with architecture teams to evaluate new silicon concepts and guide design decisions using simulation-backed analysis.
  • Validate models against real-world AI frameworks and continuously improve accuracy.
  • Improve platform scalability, automation, and maintainability.
  • Provide technical guidance to junior engineers and collaborate with customers and partners where required.

Skills

Performance modeling
Computer architecture
Systems performance
AI accelerators
Python
Data-driven analysis
Communication

Job description

Principal Performance Modeling Architect - San Francisco Bay Area - AI Accelerator Startup

An innovative AI hardware startup developing next-generation AI accelerator technology are looking for a Principal Performance Modeling Architect to lead the development of a system-level performance modeling platform that influences silicon architecture decisions before tape-out.

This is a highly technical, hands-on individual contributor role where you'll build and extend analytical performance models, evaluate AI hardware architectures, and help shape the future of advanced AI compute systems.

What You'll Be Doing
  • Own and develop a system-level performance modeling platform for AI accelerator and cluster architectures.
  • Build analytical models to predict performance, power, energy efficiency, and cost across different hardware designs.
  • Expand support beyond LLM inference to training, multimodal, and vision workloads.
  • Work closely with architecture teams to evaluate new silicon concepts and guide design decisions using simulation-backed analysis.
  • Validate models against real-world AI frameworks and continuously improve accuracy.
  • Improve platform scalability, automation, and maintainability.
  • Provide technical guidance to junior engineers and collaborate with customers and partners where required.
What We're Looking For
  • 5+ years' experience in performance modeling, computer architecture, or systems performance engineering.
  • Strong understanding of AI accelerators, GPUs, HPC systems, memory hierarchies, and interconnects.
  • Experience developing analytical or first-principles performance models rather than purely benchmarking hardware.
  • Knowledge of AI inference and training workloads and how they utilise compute, memory, and networking resources.
  • Strong Python development skills with experience building maintainable engineering tools.
  • Ability to analyse complex simulation results and influence architecture decisions through data-driven insights.
  • Excellent communication skills with the ability to explain technical concepts clearly.
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