AI Engineering Lead/Manager

Cricut•South Jordan, UT
•Onsite

About The Position

We are seeking an experienced AI Engineering Lead/Manager to lead a team that builds and ships AI-powered features across our client-facing applications. You will bring hands-on experience integrating AI capabilities, such as AI image generation, agentic actions, and Model Context Protocol (MCP) integrations, into production software used by customers. This role blends technical leadership, hands-on engineering, and strong business sense: you will partner closely with Product Management to define features and shape the roadmap, then lead your team in turning that vision into reliable, delightful experiences.

Requirements

  • Bachelor's or Master's degree in Computer Science, Software Engineering, or a related field.
  • 5+ years of hands-on, professional software development experience in one or more of: Angular, Kotlin, Swift, C#, or Python.
  • 2+ years of experience as a technical lead or engineering manager, leading engineers to deliver customer-facing software.
  • Proven experience integrating AI-based features into client-facing production software, such as AI image generation, agentic actions, LLM-powered experiences, or MCP (Model Context Protocol) integrations.
  • Practical experience with AI/LLM APIs and SDKs (e.g., OpenAI, Anthropic, Google Gemini, Stability AI, or open-source models), including prompt design, tool/function calling, and structured outputs.
  • Solid understanding of production AI tradeoffs, including latency, cost, reliability, evaluation, and safety.
  • Strong business sense, with a track record of partnering with Product to define features, prioritize a roadmap, and measure outcomes.
  • Experience designing and consuming REST APIs and integrating client applications with backend services.
  • Experience with automated testing (unit, integration, end-to-end) and CI/CD pipelines.
  • Experience instrumenting applications with telemetry/observability tools (e.g., Datadog, Firebase, or platform-native logging).
  • Hands-on, pragmatic use of modern AI engineering tools (Claude Code, Cursor, Copilot, etc.).

Nice To Haves

  • Knowledge of machine learning concepts, such as how models are trained, fine-tuned, and evaluated, and how data pipelines support them.
  • Experience with retrieval-augmented generation (RAG), embeddings, or vector databases.
  • Experience with computer vision, such as image classification, object detection, segmentation, or image understanding.
  • Experience with creative or design-focused applications, including 2D graphics or image processing.

Responsibilities

  • Lead and grow a team of engineers building AI-powered features into our client applications, setting technical direction and a high bar for quality.
  • Partner closely with Product Management to define AI features and shape the product roadmap, balancing customer value, business impact, technical feasibility, and cost.
  • Architect and deliver end-to-end integrations of AI capabilities into client-facing software (e.g., AI image generation, agentic actions and workflows, and MCP-based tool and data integrations).
  • Stay hands-on: write, review, and ship production code, and help your team work through the hardest technical problems.
  • Evaluate models, vendors, and APIs (hosted and open-source), making pragmatic build-vs-buy recommendations based on quality, latency, cost, and reliability.
  • Establish practices for evaluating and monitoring AI features, including evals, quality metrics, guardrails, and user feedback loops.
  • Build AI experiences that are safe and trustworthy, addressing content safety, privacy, prompt injection, and responsible AI considerations.
  • Collaborate with UX on intuitive interaction patterns for AI features, including handling latency, uncertainty, and failures gracefully.
  • Work with data and ML partners to understand model training, fine-tuning, and data pipelines, and translate those capabilities into product opportunities.
  • Ship behind feature flags with progressive rollout and kill-switches, validating new behavior with production telemetry before ramping.
  • Own the health of AI features through telemetry by tracking adoption, output quality, latency, cost per request, and defect trends.
  • Champion agentic coding tools in your team's daily workflow (AI-assisted code review, automated test generation) while maintaining code quality, security, and human oversight.
  • Mentor engineers, lead effective code reviews, and foster a culture of learning and experimentation.
  • Stay current on the rapidly evolving AI landscape and recommend adoption where it would meaningfully improve our products or team.

Benefits

  • Competitive Medical, Dental, and Vision coverage
  • 401(k) match
  • Generous PTO
  • Tuition reimbursement
  • Yearly lifestyle stipend
  • Exclusive employee discounts
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