Agentic AI Developer
Job in
Charlotte, Mecklenburg County, North Carolina, 28202, USA
Listed on 2026-07-09
Listing for:
Omni Inclusive
Full Time
position Listed on 2026-07-09
Job specializations:
-
Software Development
AI Engineer (Applied/Software), Backend Developer, Machine Learning/ ML Engineer
Job Description & How to Apply Below
Production Agentic AI Features Developer
Build and ship production agentic AI features — agents, tools, prompts, evals, and integrations — against an established reference architecture.
Required Qualifications:
- 3–8 years of experience in software development or data engineering
- Hands-on experience in Generative AI or LLM-based applications
- Experience building APIs, microservices, or distributed systems
- Bachelor's or Master's degree in Computer Science, AI/ML, Data Science, or related field
Key roles:
- Implement agents and sub-agents (planner, executor, critic, router) using Claude Agent SDK / Lang Graph
- Build tools and MCP integrations, design clean tool schemas, idempotent operations, and robust error handling.
- Implement RAG pipelines: ingestion, chunking, embedding (Bedrock Titan), hybrid retrieval, citation rendering.
- Develop Fast API/Python services exposing agent capabilities (sync + streaming); integrate with SQL (Postgres) and object stores (S3).
- Write evaluation harnesses (golden sets, regression suites, LLM-as-judge) and trace/observe agent runs.
- Implement guardrails: input/output validation, schema enforcement, rate limiting, prompt-injection defenses.
- Participate in code reviews, pairing, and architecture discussions; own quality of the code you ship.
- Strong Python (FastAPI, async, Pydantic) or Node/Type Script equivalent.
- Hands-on with at least one agent framework (Claude Agent SDK / Lang Graph / Auto Gen).
- Practical experience with LLM tool/function calling, structured outputs, streaming.
- RAG implementation experience (pgvector / FAISS / Open Search).
- Git, CI/CD, containerization (Docker), and cloud basics (AWS preferred).
Roles/Responsibilities:
- Implement single-agent and multi-agent systems using frameworks such as Lang Chain, Semantic Kernel, CrewAI, Auto Gen, or similar
- Build applications using LLMs (Azure OpenAI, OpenAI, Anthropic, etc.)
- Implement Retrieval-Augmented Generation (RAG) pipelines
- Enable agents to coordinate and collaborate in multi-agent ecosystems
- Build secure, scalable APIs and microservices to support AI agents
- Develop evaluation frameworks for agent performance (accuracy, hallucination detection, response quality)
- Monitor system behavior and continuously improve reliability
- Optimize performance for latency, cost, and scalability
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