Senior Backend Engineer, Shopping Agents

Posted Yesterday
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Hiring Remotely in Berlin, DEU
In-Office or Remote
Senior level
Artificial Intelligence • eCommerce • Information Technology • Software
The Role
Own backend and infrastructure for AI shopping agents, including live checkout automation, large-scale product ingestion, search and ranking, deployment, monitoring, databases, observability, and on-call operations. Build reliable systems that handle changing retailer environments, real payments, and continuously evolving catalogs. Partner directly with the CTO and improve failure recovery, correctness, and scalability. Experience with AI agents, LLMs, retrieval, ranking, e-commerce, payments, or fraud infrastructure is valued.
Summary Generated by Built In

Senior Backend Engineer, Shopping Agents

Sage AI Labs · Berlin · Full-time · [Remote]

About us

Sage AI Labs is building the infrastructure that lets AI agents transact on the open web. It is one of the few genuinely unsolved problems left in commerce, and whoever solves it sets the defaults everyone else builds on top of.

The company was founded by Sebastian Thrun (founder of Google X and Waymo, Udacity) and is backed by leading venture and strategic investors.

About the role

We build agents that shop for you. They find products across the open web and complete the purchase end to end. Real carts, real payments, and real systems built to stop them.

You would own that. Architecture, code, deploys, monitoring, and on-call for systems that transact around the clock, working directly with our CTO.

What you'll own

Our checkout agents. Frontier-model computer-use agents driving live checkouts at scale, plus the machinery that keeps them standing when the ground moves. Every retailer breaks differently and they change without warning. Your job is to make failure rare and recovery automatic.

Ingestion at scale. Take product ingestion from hundreds of sources to thousands. The answer is not more hand-written code. It is infrastructure that generates, validates, and monitors itself.

Search and ranking. Embedding-based retrieval, LLM query understanding, reranking, and caching, across a catalog that never stops changing.

What we're looking for
  • 5+ years building backend and infrastructure systems, with strong Python

  • You have owned production systems end to end: deploys, databases, observability, and the pager. You have been the person who got paged, and you fixed the class of problem rather than the incident

  • You like adversarial problems. Systems where something on the other side is actively working against you

  • You take correctness seriously because the stakes are real. These systems spend customers' money, so a silent failure is a wrong order, not a red build

  • You can move without a finished spec. We are small, and the roadmap changes when the market does

Nice to have
  • Built AI-first products or LLM-based agents in production, not just in a prototype

  • Working knowledge of classic ML and deep learning, enough to reason about retrieval and ranking rather than only calling an API

  • Background in e-commerce, payments, or fraud and risk infrastructure

Why this role

Very few engineers get to own a category-defining system while the category is still being defined. This is one of those seats, at the point where it still counts as early. A year from now this problem will have a standard answer and someone will have written it. We intend for that to be us.

Skills Required

  • 5+ years building backend and infrastructure systems
  • Strong Python experience
  • Experience owning production systems end to end, including deploys, databases, observability, and on-call
  • Ability to work on adversarial systems and solve problems where external systems change or resist automation
  • Strong focus on correctness for systems handling real customer transactions
  • Ability to work independently without a finished specification in a changing environment
  • Experience building AI-first products or LLM-based agents in production
  • Working knowledge of classic machine learning and deep learning, including retrieval and ranking
  • Background in e-commerce, payments, or fraud and risk infrastructure
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The Company
HQ: San Francisco, CA
2 Employees
Year Founded: 2025

What We Do

Building the future of AI-enabled Commerce. We’re building GOLD, an early-stage Agentic AI and commerce startup based in San Francisco and Munich, the next-generation super shopping platform — a powerful, gamified, intuitive AI-powered shopping agent designed to streamline how people discover and buy products online. We help people get the best deals on the products they love, through a seamless and delightful shopping experience and solve some of commerce’s toughest engineering challenges.

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