Product Engineer, Platform

Posted 2 Days Ago
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San Mateo, CA, USA
Hybrid
Senior level
Artificial Intelligence • Machine Learning • Software • Industrial
The Role
Build and operate backend platform capabilities including REST APIs, SDKs, agent runtimes, multi-tenant ingestion, and GPU job orchestration. Design resilient services for cloud, customer VPC, on-premises, and edge deployments. Own observability, reliability, SLOs, debugging, and on-call operations while translating AI research into production infrastructure. Senior engineers also drive architecture and engineering standards.
Summary Generated by Built In
About Archetype AI

At Archetype AI, we’re building the world’s first physical AI platform to bring artificial intelligence into the real world. Our foundation model, Newton, understands the physical world through objective sensor data and generates real-time insights into complex physical behaviors, from industrial machinery and systems to wearable devices and smart environments.

Formed by a high-caliber team from Google and backed by one of Silicon Valley’s most renowned venture funds, Archetype AI is in a Series A phase and rapidly advancing its technology for the next big leap. This is a unique opportunity to join an exciting, fast-growing AI team based in the heart of Silicon Valley.

Role Overview

We are seeking a talented Backend Engineer to architect, build, and scale foundational platform domains — ranging from public APIs/SDKs and agent execution runtimes to multi-tenant ingestion paths and orchestration engines for high-performance GPU jobs. You will translate frontier AI capabilities into resilient production infrastructure. Mid-level candidates will take end-to-end ownership of core backend services and user-facing capabilities. Senior candidates will drive technical architecture, establish system design patterns, and elevate engineering standards across the entire organization.

What You'll Own
  • Own backend product capabilities end to end: design, build, ship, operate, iterate. REST/Python APIs, agent runtimes.

  • Make research usable. Turn a new Newton capability into a versioned, observable, multi-tenant production path.

  • Build for more than one deployment model: our cloud, a customer VPC, on-prem, and increasingly the edge.

  • Treat developers as customers. API shape, error messages, SDKs, and internal tools should make the next team faster.

  • Operate what you build: SLOs, tracing, metrics, logs, on-call. Debug across code, datastores, queues, and Kubernetes.

Key Qualifications
  • 4–8+ years of professional engineering with a backend, distributed systems, or developer-platform track record.

  • Strong production experience in Rust, Python, Go, or C++. Rust strongly preferred; be ready to work in it daily.

  • Have designed, built, and operated production services in the cloud (AWS, GCP, Azure) with Kubernetes and CI/CD.

  • Distributed systems in practice: concurrency, consistency, backpressure, retries, idempotency, 10× load.

  • Product judgment: has shipped APIs or infrastructure other engineers chose to use, and cares about the contract.

  • AI-assisted development is part of your workflow: coding agents daily, without lowering the quality bar.

Nice to Have
  • ML platform experience: model serving, GPU job scheduling, experiment tracking, or feature/data pipelines.

  • On-prem, hybrid, or customer-VPC deployments; multi-tenant SaaS; identity, keys, and audit.

  • Industrial or IoT protocols (MQTT, OPC-UA, Modbus, RTSP) or streaming media/sensor pipelines.

  • Prior time at an API, infrastructure, or AI-platform company where reliability was the product.

Skills Required

  • 4-8+ years of professional engineering experience with a backend, distributed systems, or developer-platform track record
  • Production experience in Rust, Python, Go, or C++; Rust is strongly preferred
  • Experience designing, building, and operating production cloud services using AWS, GCP, or Azure
  • Experience with Kubernetes and CI/CD
  • Practical distributed systems experience, including concurrency, consistency, backpressure, retries, idempotency, and scaling
  • Experience shipping APIs or infrastructure used by other engineers
  • Use of AI-assisted development and coding agents in daily workflow
  • ML platform experience, including model serving, GPU job scheduling, experiment tracking, or feature/data pipelines
  • Experience with on-premises, hybrid, customer-VPC, multi-tenant SaaS, identity, keys, or audit systems
  • Experience with industrial or IoT protocols such as MQTT, OPC-UA, Modbus, or RTSP
  • Experience at an API, infrastructure, or AI-platform company
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The Company
41 Employees
Year Founded: 2023

What We Do

Archetype AI is a Physical AI company pioneering a new form of artificial intelligence capable of perceiving, understanding, and reasoning about the physical world, utilizing a multimodal AI foundation model that fuses real-time sensor data with natural language.

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