软件工程师,GPT基础设施
Software Engineer, GPT Infrastructure
关于团队
GPT 基础设施团队构建系统,将模型推理和优化方面的进展转化为可靠的生产能力。我们使 OpenAI 工作负载能够在新的加速器平台上进行验证和优化,而无需为每个硬件目标进行一次性移植和调优。
我们的工作涵盖分布式系统、模型执行、编译器和运行时、性能工程、安全合作伙伴集成、评估系统和开发者工具。我们构建的基础设施使优化流程自动化、可重复且值得信赖。
关于职位
我们正在寻找一名软件工程师,帮助构建在异构计算环境中对推理工作负载进行验证和优化的平台。
你将开发 OpenAI 主机服务以及安全的合作伙伴端软件,用于运行长期优化流程。这些流程生成候选内核、运行时配置和服务堆栈变更;在目标硬件上编译和执行它们;验证其正确性;测量性能;并利用结果指导进一步优化。
你将跨模型架构、分布式执行、编译器、运行时、网络和加速器系统工作。该职位的核心部分是将研究原型和一次性硬件引入工作转化为可靠、可重用的基础设施,具备明确的契约、可重复的结果、强大的可观测性和明确定义的安全边界。
主要职责
- 设计、构建和运维用于长期工作负载验证和优化活动的 API 和控制平面服务,包括调度、重试、检查点、资源预算和可观测性。
- 构建安全的合作伙伴端执行和评估软件,可以在加速器硬件上编译、运行、验证、分析和基准测试候选组件。
- 将模型工作负载、硬件配置文件、编译器工具链、运行时、服务引擎和分布式执行后端整合到可重复的平台上。
- 开发涵盖输出保真度、延迟、吞吐量、内存占用、加速器利用率、通信效率、扩展行为和成本效率的正确性和性能评估系统。
- 自动化内核、运行时配置、并行化策略和服务堆栈变更的生成、评估和改进。
- 诊断模型代码、内核、共存等方面出现的性能和正确性问题
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About the Team
The GPT Infrastructure team builds systems that turn advances in model inference and optimization into reliable production capabilities. We enable OpenAI workloads to be qualified and optimized across new accelerator platforms without requiring a one-off port and tuning effort for every hardware target.
Our work spans distributed systems, model execution, compilers and runtimes, performance engineering, secure partner integrations, evaluation systems, and developer tooling. We build the infrastructure that makes optimization workflows automated, reproducible, and trustworthy.
About the Role
We are seeking a software engineer to help build the platform that qualifies and optimizes inference workloads across heterogeneous compute environments.
You will develop both OpenAI-hosted services and secure partner-side software for running long-lived optimization workflows. These workflows generate candidate kernels, runtime configurations, and serving-stack changes; compile and execute them on target hardware; verify their correctness; measure their performance; and use the results to guide further optimization.
You will work across model architecture, distributed execution, compilers, runtimes, networking, and accelerator systems. A central part of the role is turning research prototypes and one-off hardware bring-up efforts into reliable, reusable infrastructure with clear contracts, reproducible results, strong observability, and well-defined security boundaries.
Key Responsibilities
- Design, build, and operate APIs and control-plane services for long-running workload qualification and optimization campaigns, including scheduling, retries, checkpointing, resource budgets, and observability.
- Build secure partner-side execution and evaluation software that can compile, run, verify, profile, and benchmark candidate artifacts on accelerator hardware.
- Integrate model workloads, hardware profiles, compiler toolchains, runtimes, serving engines, and distributed-execution backends into a repeatable platform.
- Develop correctness and performance evaluation systems spanning output fidelity, latency, throughput, memory footprint, accelerator utilization, communication efficiency, scaling behavior, and cost efficiency.
- Automate the generation, evaluation, and improvement of kernels, runtime configurations, parallelization strategies, and serving-stack changes.
- Diagnose performance and correctness issues across model code, kernels, compilers, runtimes, memory systems, networking, collective communication, and hardware.
- Build artifact-management, provenance, regression-testing, and qualification workflows for kernels, binaries, configurations, evaluation results, and deployment reports.
- Turn experimental research workflows into reliable product surfaces with clear interfaces, actionable failure modes, and strong developer ergonomics.
- Collaborate with Research, Inference Engineering, Runtime and Compiler teams, Infrastructure, Security, Product, and Strategic Partnerships to onboard and optimize new compute platforms.
- Drive technical architecture and execution across ambiguous initiatives spanning OpenAI systems and partner environments.
Qualifications
- Strong software engineering experience building distributed systems, infrastructure platforms, production services, developer platforms, or orchestration systems.
- Proficiency in one or more systems-oriented languages such as Python, C++, Go, or Rust.
- Experience designing and operating APIs, job orchestration systems, durable workflows, or large-scale backend services.
- Strong understanding of Linux, networking, storage, containers, distributed execution, and modern infrastructure architectures.
- Ability to reason about model execution and diagnose problems across software and hardware boundaries.
- Experience using profiling, tracing, benchmarking, and measurement to guide engineering decisions.
- Strong ownership and the ability to work effectively across research, engineering, security, product, and external-partner teams.
Preferred Skills
- Experience with AI infrastructure, model inference, distributed ML systems, or inference-serving platforms.
- Familiarity with GPU or accelerator architecture, memory hierarchies, interconnects, collective communication, and distributed model execution.
- Experience with compilers, runtimes, kernels, or performance engineering using technologies such as CUDA, ROCm, Triton, LLVM, or MLIR.
- Familiarity with inference engines or serving systems such as vLLM, SGLang, Triton Inference Server, or comparable internal systems.
- Experience with model partitioning, sharding, tensor or expert parallelism, and compute–communication tradeoffs.
- Experience building remote-execution systems, secure partner-facing infrastructure, evaluation harnesses, or artifact pipelines.
- Experience with automated optimization, search systems, coding agents, or evaluator-driven systems that iteratively improve kernels or runtime configurations.
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 https://cdn.openai.com/policies/eeo-policy-statement.pdf.
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.
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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.