AI Engineer Agentic AI / Generative AI

Talent Software Services, Inc.

  • Louisville, KY
  • 1 day ago
  • $41.66–$43.18 Per Hour

Highlights

Primary Focus: Agentic AI, RAG, MCP, Multi-Agent Orchestration, Python, LangChain, LangSmith, and Graph Databases. Develop AI solutions that integrate LLMs, enterprise data, APIs, tools, and external systems.

Numbers & Facts

LocationLouisville, KY
Salary$41.66–$43.18 Per Hour

Description

Job Description – AI Engineer

  • Job Title: AI Engineer – Agentic AI / Generative AI

  • Location: Louisville, KY

  • Duration: 6 months

  • Experience Required: 8–10 years

  • Role: AI Engineer

  • Essential Skill: AI Engineering

  • Primary Focus: Agentic AI, RAG, MCP, Multi-Agent Orchestration, Python, LangChain, LangSmith, and Graph Databases

  • Desirable Skill: Google Cloud Platform (GCP)

  • Keyword: AI and Automation

Must-Have Technical Skills

  • Strong experience in Agentic AI Full Stack development.

  • Hands-on experience with Retrieval-Augmented Generation (RAG).

  • Experience with Model Context Protocol (MCP).

  • Strong experience in Multi-Agent orchestration.

  • Experience with end-to-end AI solution deployment.

  • Strong hands-on experience with LangChain.

  • Experience with LangSmith.

  • Strong Python programming skills.

  • Experience with Graph Databases, such as:

    • Neo4j

    • Other graph database technologies

  • Experience building scalable AI/GenAI applications from development through production deployment.

Good-to-Have Skills

  • Google Cloud Platform (GCP) experience.

  • Generative AI application development.

  • AI/ML platform and cloud deployment experience.

  • Experience with enterprise AI and automation solutions.

Roles & Responsibilities

  • Design and develop Agentic AI full-stack solutions.

  • Build production-ready RAG-based applications.

  • Design and implement multi-agent architectures and orchestration frameworks.

  • Implement MCP-based integrations for AI agents and tools.

  • Develop AI applications using Python.

  • Build conversational and intelligent applications using LangChain.

  • Use LangSmith for LLM application development, tracing, evaluation, and monitoring.

  • Design and implement graph-based solutions using Neo4j or similar graph databases.

  • Develop AI solutions that integrate LLMs, enterprise data, APIs, tools, and external systems.

  • Manage end-to-end deployment of AI applications from development through production.

  • Design scalable and reliable AI application architectures.

  • Integrate RAG pipelines with enterprise knowledge sources and data repositories.

  • Develop agent workflows capable of reasoning, tool usage, task execution, and multi-agent collaboration.

  • Troubleshoot and optimize AI application performance, reliability, and scalability.

  • Collaborate with engineering and business teams to translate requirements into AI-driven solutions.

  • Follow software engineering, testing, deployment, and monitoring best practices.

  • Leverage GCP for AI application development and deployment where applicable.

Key Skills / Keywords

  • Agentic AI

  • Generative AI

  • AI Engineering

  • AI Automation

  • RAG

  • Retrieval-Augmented Generation

  • MCP

  • Model Context Protocol

  • Multi-Agent Systems

  • Multi-Agent Orchestration

  • LangChain

  • LangSmith

  • Python

  • Neo4j

  • Graph Database

  • LLM

  • LLM Application Development

  • AI Full Stack

  • End-to-End Deployment

  • GCP

  • Google Cloud

  • AI Architecture

  • AI/ML Integration

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