Member of Technical Staff (TPM, Inference)

Perplexity·San Francisco, California, United States | New York, New York, United States$170K - $265K·posted 33d ago · last seen 2m ago

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About interviewing at Perplexity

One of the few AI startups with a fully published interview guide (perplexity.ai/hub/careers/interview-guide): online application (response within two weeks) → recruiter phone screen → a technical screen that for engineers is 'usually a standard technical programming interview' → a quickly-scheduled onsite of 4–5 interviews including a hiring-manager deep dive on past work and experience anecdotes → a final interview with a Perplexity founder or leader → decision within a week of the onsite. Coding leans Python and mixes LeetCode medium–hard with practical search-flavored tasks (ranking/filtering, concurrency, data handling); system design is AI-native (RAG pipelines, retrieval at scale, LLM serving cost/latency). Applicants are judged 'solely on merit and potential impact' and must show 'frontier knowledge and excellence in at least one area'; roles are broad by default with team matching happening during the onsite, every role — managers included — is hands-on, and building AI products isn't expected but fluency in using AI tools is required. In-person 4 days/week near an office; remote is case-by-case.

Read the full Perplexity interview process →

Description

Perplexity is looking for a technical program manager to be the connective tissue between our model providers, engineering, and product teams, driving our core inference platform forward.

Perplexity runs one of the highest-throughput inference stacks in the industry, serving Ask, Computer, and API traffic across a large and constantly shifting portfolio of first-party and third-party models. This role sits at the intersection of product, engineering, and finance: you'll orchestrate across model providers and internal teams to keep new models and capacity moving smoothly into production, while executing the roadmap for the inference platform itself. The ideal candidate has strong technical judgment, thrives coordinating across teams and external partners with competing timelines, and is energized by building the operating model for a function that doesn't have much precedent yet.

Our Mission

Perplexity's mission is to power curiosity. Curious people are the people who drive change in the world. Driving change is a continuous cycle of learning, building, and integrating.

Learn: curious people constantly learn new things by asking more. They question the status quo in their own expertise and they constantly learn outside of it. Research is essential to them and never ending.

Build: curious people make and create things, to show the world their new answers to problems no one else ever questioned. They take action on what they've learned. Makers need tools to create their products, their companies, their reality.

Integrate: they must interact with the world as it is to drive change and adoption. True leaders do not simply build something and hope. They must have armies of agents and workers who can constantly work in millions of small ways.

Repeat. For curious people this is a cycle that never ends.

What You'll Do

  • Execute the roadmap for the inference platform — request handling, rate limits and quotas, usage controls, and the reliability and observability surface engineering and product teams depend on

  • Be the connective tissue between model providers and Perplexity's engineering and product teams — coordinating onboarding, launch readiness, and rollout for new models and capacity

  • Drive latency, throughput, uptime, and cost-efficiency as core execution metrics, surfacing tradeoffs between them rather than letting them become side effects

  • Run the operating model for model-release and optimization programs, including day-zero launches, across performance engineering, infrastructure, and product teams

  • Lead cross-functional delivery for inference-stack changes, from planning through launch and post-launch validation

  • Build the mechanisms that make releases predictable — rituals, dashboards, launch checklists — so inference releases stay low-risk at Perplexity's scale

  • Partner with GPU capacity and compute teams to reconcile execution decisions against cost, capacity, and vendor constraints

Qualifications

  • Strong experience with technical program management or product management in infrastructure, distributed systems, or ML/model-serving products

  • Direct experience with production LLM or ML inference — understanding what makes serving fast, reliable, and cheap rather than just what a roadmap slide says about it

  • Comfort orchestrating across external partners and internal engineering teams with competing priorities and timelines

  • Experience with data and metrics, and the judgment to surface difficult tradeoffs between latency, throughput, uptime, and cost

  • Thrives in a small, agile team; has initiative and desire for ownership without much precedent to lean on

  • 6+ years of combined technical program management or product management experience

 

Salary Range: $170K - $265K

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