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性能建模负责人

机器翻译
查看雇主原标题Performance Modeling Lead

OpenAI · San Francisco; Seattle · $293k – $385k

职位信息来自雇主公开的招聘页面。申请前请务必在雇主官网核实详情。

为什么值得关注?

发现指数 81/100,仅依据与该职位一起存储的证据计算。

81/100 发现指数
  • 新的雇主官方职位
  • 已披露薪资
  • 远程职位
  • 检测到搬迁支持关键词

分数构成

  • 时效性 (随职位发布时间变化)+18
  • 雇主官方来源+15
  • 已披露薪资+15
  • 远程职位+8
  • 提及搬迁+6
  • 稀有职位+11
  • 公司来源健康度+8

该职位未包含:提及签证担保、未出现在监控的职位板上。

这些理由来自雇主自己的职位描述与我们核实过的来源检查结果。除了已存储的信号之外,我们不做任何推测。

职位描述

英文原文

该职位由雇主以英文发布,暂无中文版本,下面完整显示英文原文。 查看官方职位页面.

职位描述

About the Team OpenAI’s Hardware organization develops system and infrastructure solutions designed for the unique demands of advanced AI workloads. We work closely with research, software, and external hardware partners to shape the next generation of AI systems, from silicon through full-scale deployments. Our team focuses on understanding and optimizing performance across the full system stack—ensuring that architectural decisions are grounded in rigorous, quantitative analysis of real-world workloads. About the Role We are seeking a Performance Modeling Lead to build and lead a small, high-impact team responsible for answering forward-looking architectural questions across AI infrastructure systems. You will develop modeling frameworks and methodologies to evaluate system-level tradeoffs and guide key design decisions. Your work will directly influence reference architectures, vendor designs, and long-term infrastructure strategy. This role sits at the intersection of AI workloads, system architecture, and quantitative modeling, and requires strong technical judgment, ownership, and the ability to translate complex analysis into clear, actionable guidance. This role is based in San Francisco, CA. We use a hybrid work model of 3 days in the office per week and offer relocation assistance. Key Responsibilities • Build and own a performance modeling framework/toolchain to evaluate AI systems across multiple levels of abstraction.

• Analyze and quantify architectural tradeoffs across compute, memory, networking, storage, and system topology.

• Develop performance models to guide decisions on: • scale-up vs. scale-out architectures

• interconnect and network design

• memory hierarchy and system balance.

• Translate modeling outputs into clear recommendations for internal teams and external hardware vendors.

• Influence reference designs and vendor roadmaps through data-driven insights.

• Partner closely with machine learning, systems, and hardware teams to understand workload characteristics and requirements.

• Lead and grow a small team (2–3 engineers), setting technical direction and maintaining high standards for modeling rigor.

• Continuously improve modeling fidelity by validating against real system behavior and measurements.

Qualifications • Have experience owning or building performance modeling fram

岗位职责

We are seeking a Performance Modeling Lead to build and lead a small, high-impact team responsible for answering forward-looking architectural questions across AI infrastructure systems. You will develop modeling frameworks and methodologies to evaluate system-level tradeoffs and guide key design decisions. Your work will directly influence reference architectures, vendor designs, and long-term infrastructure strategy. This role sits at the intersection of AI workloads, system architecture, and quantitative modeling, and requires strong technical judgment, ownership, and the ability to translate complex analysis into clear, actionable guidance. This role is based in San Francisco, CA. We use a hybrid work model of 3 days in the office per week and offer relocation assistance. • Build and own a performance modeling framework/toolchain to evaluate AI systems across multiple levels of abstraction.

• Analyze and quantify architectural tradeoffs across compute, memory, networking, storage, and system topology.

• Develop performance models to guide decisions on: • scale-up vs. scale-out architectures

• interconnect and network design

• memory hierarchy and system balance.

• Translate modeling outputs into clear recommendations for internal teams and external hardware vendors.

• Influence reference designs and vendor roadmaps through data-driven insights.

• Partner closely with machine learning, systems, and hardware teams to understand workload characteristics and requirements.

• Lead and grow a small team (2–3 engineers), setting technical direction and maintaining high standards for modeling rigor.

• Continuously improve modeling fidelity by validating against real system behavior and measurements.

任职要求

• Have experience owning or building performance modeling frameworks used to drive real system design decisions.

• Have deep knowledge of AI/ML workloads, including training and/or inference at scale.

• Understand system-level tradeoffs across compute, memory, and networking in large-scale distributed systems.

• Are comfortable working across abstraction layers—from workload behavior to hardware implementation.

• Have experience using modeling (analytical or simulation) to inform architectural decisions.

• Can operate in ambiguous problem spaces and turn open-ended questions into structured analysis.

• Communicate clearly and influence both internal teams and external partners.

Preferred Skills • Experience working with hardware vendors (ODM/JDM, silicon, networking).

• Background in data center infrastructure or hyperscale systems.

• Familiarity with accelerators (GPUs/ASICs) and interconnects (e.g., NVLink, InfiniBand, Ethernet).

• Experience influencing hardware roadmaps or reference architectures.

• Prior experience leading or mentoring engineers.

About OpenAI OpenAI is an AI research and deployment company dedicated to ensuring that general-purpose artificial intelligence benefits all of humanity. We push the boundaries of the capabilities of AI systems and seek to safely deploy them to the world through our products. AI is an extremely powerful tool that must be created with safety and human needs at its core, and to achieve our mission, we must encompass and value the many different perspectives, voices, and experiences that form the full spectrum of humanity. We are an equal opportunity employer, and we do not discriminate on the basis of race, religion, color, national origin, sex, sexual orientation, age, veteran status, disability, genetic information, or other applicable legally protected characteristic. For additional information, please see OpenAI’s Affirmative Action and Equal Employment Opportunity Policy Statement . Background checks for applicants will be administered in accordance with applicable law, and qualified applicants with arrest or conviction records will be considered for employment consistent with those laws, including the San Francisco Fair Chance Ordinance, the Los Angeles County Fair Chance Ordinance for Employers, and the California Fair Chance Act, for US-based candidates. For unincorporated Los Angeles County workers: we reasonably believe that criminal history may have a direct, adverse and negative relationship with the following job duties, potentially resulting in the withdrawal of a conditional offer of employment: protect computer hardware entrusted to you from theft, loss or damage; return all computer hardware in your possession (including the data contained therein) upon termination of employment or end of assignment; and maintain the confidentiality of proprietary, confidential, and non-public information. In addition, job duties require access to secure and protected information technology systems and related data security obligations. To notify OpenAI that you believe this job posting is non-compliant, please submit a report through this form . No response will be provided to inquiries unrelated to job posting compliance. We are committed to providing reasonable accommodations to applicants with disabilities, and requests can be made via this link . OpenAI Global Applicant Privacy Policy At OpenAI, we believe artificial intelligence has the potential to help people solve immense global challenges, and we want the upside of AI to be widely shared. Join us in shaping the future of technology.

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