远程工作雷达

产品经理,推理平台

Product Manager, Inference Platform

AI开发工程职能支持未标注地域
公司Baseten
薪资$165,000 - $330,000
工作地点San Francisco / New York
地域资格未标注地域
时区要求无特别要求
用工类型FullTime
发布时间2026-04-02
数据来源Ashby
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ABOUT BASETEN

Baseten 为全球最具活力的 AI 公司提供关键推理支持,如 Cursor、Notion、OpenEvidence、Abridge、Clay、Gamma 和 Writer。通过结合应用 AI 研究、灵活的基础架构和无缝的开发者工具,我们使处于 AI 前沿的公司能够将前沿模型投入生产。我们正在快速成长,并最近完成了 15 亿美元 F 轮融资 https://www.baseten.co/blog/announcing-our-series-f/,由 Altimeter Capital、Conviction Partners 和 Spark Capital 领投。加入我们,帮助构建工程师们用来交付 AI 产品的平台。

THE ROLE

Baseten 的产品职能仍处于早期阶段。我们公司目前拥有强大的工程文化,高度重视客户,并且行动迅速。我们现在正在建立产品职能,而你将成为定义它的人之一。你将直接与我们的创始人以及一些最优秀的系统和 AI 工程师合作,并为这里的产品定义标准。Baseten 的 PM 不是站在工程师之上。你通过技术能力、在客户面前发现真相、建立良好的跨职能关系以及交付优秀的产品体验来赢得主导权。

一旦模型被部署,能否在大规模下保持快速、可靠和经济,是生产推理成败的关键。你将负责实现这一目标的界面:如何自动扩展部署,如何路由流量,系统如何故障转移,以及工作负载如何在集群和区域之间扩展。你将对这些功能进行端到端的产品管理,包括它们内部的工作方式以及客户如何配置和观察它们,并设定基础设施和产品团队都可以朝着这个方向构建的路线图。这个领域仍在不断发展。可以想象一下 2000 年代中期的云基础设施。你的工作是让在生产环境中可靠地扩展和部署 AI 模型变得 10 倍容易,并树立行业标准。

如果你喜欢深入技术细节,并且更愿意为了客户交付而做任何必要的事情,而不是停留在策略、UX 或文档层面,那么这个职位非常适合你。你更倾向于平台、系统、GPU、模型和扩展基础设施,而不是应用 AI,你在基础性、有时并不光鲜但能确保 AI 系统在基础设施层面可靠和可扩展的工作中找到真正的满足感。

EXAMPLE INITIATIVES

看看我们产品和基础设施团队成员撰写的这些博客文章:

- 我们如何构建多云部署

查看英文原文

ABOUT BASETEN

Baseten powers mission-critical inference for the world's most dynamic AI companies, like Cursor, Notion, OpenEvidence, Abridge, Clay, Gamma, and Writer. By uniting applied AI research, flexible infrastructure, and seamless developer tooling, we enable companies operating at the frontier of AI to bring cutting-edge models into production. We're growing quickly and recently raised our $1.5B Series F https://www.baseten.co/blog/announcing-our-series-f/, led by Altimeter Capital, Conviction Partners, and Spark Capital. Join us and help build the platform engineers turn to ship AI products.

THE ROLE

Product at Baseten is a nascent function. Our company today has a strong engineering culture, is heavily customer-obsessed, and moves fast. We're building the product function now, and you'd be one of the people who defines it. You'll work directly with our founders and with some of the best systems and AI engineers, and you'll set the standard for what product looks like here. PMs at Baseten don't sit above engineers. You earn ownership by being technical, finding the truth in front of customers, building great cross-functional relationships, and shipping great product experiences.

Once a model is deployed, keeping it fast, reliable, and economical at scale is where production inference is won or lost. You'll own the surface that makes that happen: how deployments autoscale, how traffic is routed, how the system fails over, and how workloads scale across clusters and regions. You'll own these as products end to end, both how they work under the hood and how customers configure and observe them, and you'll set the roadmap that infrastructure and product teams alike can build toward. This space is still evolving. Think cloud infrastructure in the mid-2000s. Your job is to make it 10x easier to reliably scale and serve AI models in production, and to set the market standard.

This role is a great fit if you love getting deep in the technical details, and if you'd rather do whatever it takes to ship for customers than stay in the strategy, UX, or docs layer. You're drawn to platforms, systems, GPUs, models, and scaling infrastructure more than to applied AI, and you find real satisfaction in the foundational, sometimes unglamorous work that makes AI systems reliable and scalable at the infrastructure level.

EXAMPLE INITIATIVES

Take a look at these blog posts written by members of our Product and Infrastructure teams:

- How we built Multi-cloud Capacity Management (MCM) https://www.baseten.co/blog/how-we-built-multi-cloud-capacity-management/

- How the Baseten Delivery Network (BDN) makes cold starts fast https://www.baseten.co/blog/how-the-baseten-delivery-network-bdn-makes-cold-starts-fast/

- Baseten brings AI video to life on Nebius https://www.baseten.co/blog/ai-video-nebius-baseten-inference-stack/

RESPONSIBILITIES

- Own how workloads scale and where they land, from autoscaling to demand (up under load, down to zero when idle) to a single placement policy that expresses region, compliance regime, and capacity preference.

- Give compliance-bound workloads right-of-way on sensitive capacity.

- Make production inference reliable by default, so every request reaches a healthy replica and rolling deploys never drop traffic.

- Define region-aware routing, with multi-region and active-active failover as first-class policy, plus health-aware recovery from stuck or bad replicas.

- Build the release engine beneath safe rollouts: the traffic-shifting that powers canary, shadow, and A/B, along with warm-ups, drain, and probes.

- Push the cost and performance frontier for serving AI at scale across latency, throughput, uptime, and cost efficiency.

- Drive a measurable decline in MTTR through self-serve incident management.

- Set the roadmap that infrastructure and product teams build toward, and own each capability end to end, from backend behavior through the customer-facing configuration and observability surface.

REQUIREMENTS

- 8+ years in product management, including deep experience with infrastructure, distributed systems, or ML serving.

- Fluency reasoning about scaling, routing, failover, and the cost/performance frontier, at a level that earns the respect of staff engineers.

- Experience owning capabilities end to end, backend through UX, rather than a single slice.

- Track record driving cross-team roadmaps and the dependencies beneath them.

- Comfort defining a category that doesn't fully exist yet.

NICE TO HAVE

- Hands-on experience with GPU infrastructure.

- Experience with Kubernetes.

- Experience with serving frameworks like vLLM, TensorRT-LLM, or SGLang.

BENEFITS

- Competitive compensation, including meaningful equity

- (U.S. only) 100% coverage of medical, dental, and vision insurance for employee and dependents

- Flexible PTO policy including company wide Winter Break (our offices are closed from Christmas Eve to New Year's Day!)

- Paid parental leave

- Fertility and family-building stipend through Carrot

- Company-facilitated 401(k)

- Exposure to a variety of ML startups, offering unparalleled learning and networking opportunities.

Apply now to embark on a rewarding journey in shaping the future of AI! If you are a motivated individual with a passion for machine learning and a desire to be part of a collaborative and forward-thinking team, we would love to hear from you.

At Baseten, we are committed to fostering a diverse and inclusive workplace. We provide equal employment opportunities to all employees and applicants without regard to race, color, religion, gender, sexual orientation, gender identity or expression, national origin, age, genetic information, disability, or veteran status.

We are an Equal Opportunity Employer and will consider qualified applicants with criminal histories in a manner consistent with applicable law (by example, the requirements of the San Francisco Fair Chance Ordinance, where applicable).

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