Unknown Company

Technical Lead

cary, nc • Posted 3 days ago
Onsite Full Time IT & Technology

Job Description

  • Build and productionize cloud native backend services and AI/LLM inference pipelines.
  • Design and develop Python-based APIs and microservices (FastAPI, async patterns) and agentic AI workflows using LangChain/LangGraph.
  • Implement and optimize LLM capabilities including embeddings, RAG, vector search, prompt/context engineering, and model versioning.
  • Package, serve, and monitor models for real-time and batch inference, ensuring operational readiness and performance.
  • Build event driven, resilient integrations and containerized services, with hands‑on Kubernetes debugging and Helm-based deployments.
  • Apply strong systems design principles (concurrency, caching, reliability, rate limiting) and robust data engineering practices.
  • Cloud exposure preferred (Azure/AKS, managed services), with bonus experience in performance tuning, frontend collaboration, and model governance/monitoring.

Must Have Technical/Functional Skills

  • 13+ years of experience with IT
  • Build and productionize cloud native backend services and AI/LLM inference pipelines.
  • Design and develop Python-based APIs and microservices (FastAPI, async patterns) and agentic AI workflows using LangChain/LangGraph.
  • Implement and optimize LLM capabilities including embeddings, RAG, vector search, prompt/context engineering, and model versioning.
  • Package, serve, and monitor models for real-time and batch inference, ensuring operational readiness and performance.
  • Build event driven, resilient integrations and containerized services, with hands‑on Kubernetes debugging and Helm-based deployments.
  • Establish observability, SLOs, CI/CD automation, testing
  • Apply strong systems design principles (concurrency, caching, reliability, rate limiting) and robust data engineering practices.
  • Cloud exposure preferred (Azure/AKS, managed services), with bonus experience in performance tuning, frontend collaboration, and model governance/monitoring.

Roles & Responsibilities

  • Build and productionize cloud native backend services and AI/LLM inference pipelines.
  • Design and develop Python-based APIs and microservices (FastAPI, async patterns) and agentic AI workflows using LangChain/LangGraph.
  • Implement and optimize LLM capabilities including embeddings, RAG, vector search, prompt/context engineering, and model versioning.
  • Package, serve, and monitor models for real-time and batch inference, ensuring operational readiness and performance.
  • Build event driven, resilient integrations and containerized services, with hands‑on Kubernetes debugging and Helm-based deployments.
  • Establish observability, SLOs, CI/CD automation, testing
  • Apply strong systems design principles (concurrency, caching, reliability, rate limiting) and robust data engineering practices.
  • Cloud exposure preferred (Azure/AKS, managed services), with bonus experience in performance tuning, frontend collaboration, and model governance/monitoring.

Salary Range

Salary Range: $110,000 to $130,000 per year

Qualifications

BACHELOR OF COMPUTER SCIENCE

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