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Full Stack AI Engineer (Senior Level)

Leads design and architecture of production AI systems including agentic workflows, RAG, and LLM applications for scalable company automation. Requires 10+ years full-stack engineering with deep AI/ML production experience.

United StatesFullstack EngineeringRemote10+ YOE

About the role

Responsibilities

  • Design Leadership: Own and lead complex system design discussions, architectural decisions, negotiate and shape builds.
  • Feasibility & Scoping: Assess technical feasibility of AI product ideas, produce scoping documents to prevent scope creep.
  • Technology & Frameworks: Define tech stacks, build reusable frameworks, establish engineering guidelines.
  • Experimentation: Build prototypes, align with stakeholders, evaluate early signals to kill or accelerate.
  • Cross-functional Collaboration: Partner with research, operations, data teams; juggle workstreams and tradeoffs.
  • Excellence: Build scalable systems, lead AI application evaluation practices.

Qualifications

  • Staff-level with 10+ years software engineering experience owning complex systems end-to-end.
  • Strong full-stack engineer with extensive AI/ML experience; systems, architecture, tradeoffs focus.
  • Design ambiguous problems into reliable, scalable AI harnesses; lead design discussions.
  • Production AI systems: agentic workflows, multi-agent orchestration, HITL pipelines, LLM apps, RAG, vector stores, semantic search, multi-model stacks.
  • Context engineering for AI limitations.
  • Distributed systems in AI/data platforms.
  • Agentic coding proficiency to boost output.
  • Quick learner across technical domains.

Nice to Have

  • Experience at AI data companies (Scale AI, Surge, Snorkel, Labelbox) building synthetic data pipelines, eval environments, task generation.
  • Human data labeling interfaces, annotation workflows, data collection pipelines.
  • Preference data, reward models (RLHF, RLVR).
  • Proficiency: Python, TypeScript, AWS, GCP, Terraform, Temporal Cloud, containerization, LLM gateways, RAG frameworks, data pipeline tooling.

Skills

PythonTypeScriptAWSGCPTerraformTemporal CloudLLMsRAGVector StoresSemantic SearchAgentic WorkflowsMulti-Agent OrchestrationDistributed SystemsContainerizationData Pipelines

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