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Staff Enterprise AI Engineer

Peloton
New York, USAfull_timePosted 9 Jun 2026

About the role

<p><strong>ABOUT THE ROLE&nbsp;</strong></p> <p>Peloton is looking to transform our enterprise tech strategy with AI adoption. We are looking for a <strong>Staff Enterprise AI Engineer</strong> to serve as the "Founding Engineer" of our Enterprise AI Platform.This is not a traditional Data Science role. You will not spend your days tweaking hyperparameters. Instead, you will architect and build the&nbsp;<strong>Operating System</strong> that enables our Product, People, and Operations teams to deploy AI Agents safely and at scale. You will act as a "Player/Coach," laying the technical foundation (Infrastructure, Security, Orchestration) while guiding a team of engineers to execute the vision.&nbsp;You will build the "Golden Path" that helps everyone at Peloton to leverage AI securely for the competitive advantage of Peloton.</p> <p><strong>YOUR DAILY IMPACT AT PELOTON</strong></p> <ul> <li>Architect the "Intelligence &amp; Integration" Layers</li> <li>Design and build a scalable Agentic Orchestration Platform (using LangChain, LangGraph, or custom frameworks) that allows internal developers to spin up autonomous agents.</li> <li>Implement the "Integration Layer" ensuring all AI agents connect to internal APIs (Workday, Snowflake, SAP) via secure, standardized protocols (Model Context Protocol - MCP).</li> <li>Solve the "State Problem" for AI, architecting memory stores (Vector DBs like Pinecone/Weaviate) that persist context across user sessions.</li> <li>Enforce "Security by Design"</li> <li>Partner with Security leadership to implement&nbsp;Identity Propagation. Ensure agents execute tasks using the <em>user’s</em> specific OAuth scopes, preventing privilege escalation.</li> <li>Build&nbsp;"Data Clean Rooms" and PII masking pipelines to ensure sensitive member or employee data is never leaked to model providers.</li> <li>Deploy&nbsp;EvalOps pipelines to automatically test models for hallucination and regression before they hit production</li> <li>Define the Engineering Standards</li> <li>Define the "Guide vs. Control" standards for the organization. Create the templates and libraries that allow analysts to "Vibe Code" (low-code/assisted coding) safely within our guardrails.</li> <li>Perform rigorous code reviews for partner teams and vendors, ensuring high performance, low latency (&lt;200ms), and cost efficiency</li> <li>Capital-Efficient Scale</li> <li>Optimization of inference costs by implementing&nbsp;Semantic Caching and routing logic (e.g., routing simple queries to smaller/cheaper models).</li> <li>Leverage Kubernetes (EKS) to manage ephemeral

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Company

Peloton

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