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Lead Engineer, AI Quality - Circle

About Us

Circle is building the world’s leading AI-powered, all-in-one platform for digital businesses. We make it possible for creators, coaches, educators, and businesses to bring together their audience with engaging discussions, live streams, events, chat, courses, and payments — all in one place, all under their own brand.

We’re proud to be a fully remote company of around 270 team members from 30+ countries around the world. We collaborate across time zones, are highly async, and value thorough documentation. Twice a year, we bring the whole company together in beautiful places around the world for our company offsites.

About the Role

The AI Quality engineering team at Circle owns the foundation for measuring, diagnosing, and improving the quality of Circle's AI-powered features. This team focuses on building the infrastructure to measure, diagnose, and improve production AI systems, rather than ML research or model training.

We're looking for a Lead Engineer to help us build out the evaluation frameworks, observability tooling, and diagnostic infrastructure that tell us whether our AI Agents are working well, where to improve them, and how to make them faster and more cost-efficient. This is a hands-on player-coach role where you’ll also lead and manage the AI Quality engineering team.

What You'll Be Doing

  • Build and own our evaluation infrastructure: Design CI/CD pipelines, scorers, and datasets that tell us whether Circle's AI agents (planners, tool-callers, and sub-agents) are working, from a single tool call to a full multi-turn conversation.
  • Diagnose quality bottlenecks: Trace failures across the agent pipeline including plan creation vs. execution, tool selection, and tool trajectory in complex areas like workflows, site builder, and analytics.
  • Grow evaluation datasets: Stand up annotation workflows and build out AI-generated and simulated conversations to cover more of the product faster than manual labeling.
  • Run structured experiments: Evaluate new and open-source models against our production baseline, and chase cost and latency wins through model swaps, caching, and routing.
  • Lead and grow the team: Set technical direction and manage day-to-day priorities while staying hands-on in the code.
  • Partner with AI Core engineering: Work with engineers building Circle's AI products to ensure changes improve quality reliably.

What You'll Need to Be Successful

  • 7+ years of experience: Building and shipping production software, ideally including LLM-powered agents that take real actions in a product.
  • Ruby on Rails / Python proficiency: Ruby on Rails is our production system and foundation, and Python proficiency is a strong plus for data and evaluation work.
  • ML/AI observability experience: Experience building eval pipelines, scorers, dashboards, or CI/CD for evals using frameworks like Braintrust or LangSmith.
  • Dataset & workflow design: Experience designing datasets, annotation workflows, or labeling pipelines for ML/AI evaluation.
  • Experimental mindset: Learn fast, experiment aggressively, and thrive in a dynamic, ambiguous environment.
  • Communication: Proficient in English (spoken, written, and reading) at a CEFR Level C2 / ILR Level 5.

Culture

Async-friendly

Open to

Worldwide

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