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Lead Agentic AI

Brains Technology SolutionNJ🇺🇸United StatesPosted 29 Jul 2026

Why This Role Stands Out

This Lead Agentic AI position offers a unique opportunity to pioneer innovative AI solutions using cutting-edge tools like LangGraph and drive the future of autonomous systems. If you possess deep expertise in LLM orchestration and are eager to architect and scale complex multi-agent AI systems, this role is an excellent step to advance your career. Apply today to shape the next generation of enterprise AI!

Quick Overview

Work Type
On Site
Level
Mid Senior

Job Description

Position: Lead Agentic AI

Location: Basking, NJ - Onsite

Contract: W2

We have an urgent need for Lead Agentic AI resource in Basking, New Jersey.

Primary - LangGraph, ReAct, LangChain, LlamaIndex, Python

Secondary - Google Cloud Platform, Google Spanner/Neo4j, CrewAI, AutoGen, OpenAI

JD:

The Agentic AI Lead is a pivotal role responsible for driving the research, development, and deployment of semi-autonomous AI agents to solve complex enterprise challenges. This role involves hands-on experience with LangGraph, leading initiatives to build multi-agent AI systems that operate with greater autonomy, adaptability, and decision-making capabilities.
The ideal candidate will have deep expertise in LLM orchestration, knowledge graphs, reinforcement learning (RLHF/RLAIF), and real-world AI applications. As a leader in this space, they will be responsible for designing, scaling, and optimizing agentic AI workflows, ensuring alignment with business objectives while pushing the boundaries of next-gen AI automation.
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Key Responsibilities:

Architecting & Scaling Agentic AI Solutions

Design and develop multi-agent AI systems using LangGraph for workflow automation, complex decision-making, and autonomous problem-solving.

Build memory-augmented, context-aware AI agents capable of planning, reasoning, and executing tasks across multiple domains.

Define and implement scalable architectures for LLM-powered agents that seamlessly integrate with enterprise applications.

Hands-On Development & Optimization

Develop and optimize agent orchestration workflows using LangGraph, ensuring high performance, modularity, and scalability.

Implement knowledge graphs, vector databases (Pinecone, Weaviate, FAISS), and retrieval-augmented generation (RAG) techniques for enhanced agent reasoning.

Apply reinforcement learning (RLHF/RLAIF) methodologies to fine-tune AI agents for improved decision-making.

Driving AI Innovation & Research

Lead cutting-edge AI research in Agentic AI, LangGraph, LLM Orchestration, and Self-improving AI Agents.

Stay ahead of advancements in multi-agent systems, AI planning, and goal-directed behavior, applying best practices to enterprise AI solutions.

Prototype and experiment with self-learning AI agents, enabling autonomous adaptation based on real-time feedback loops.

AI Strategy & Business Impact

Translate Agentic AI capabilities into enterprise solutions, driving automation, operational efficiency, and cost savings.

Lead Agentic AI proof-of-concept (PoC) projects that demonstrate tangible business impact and scale successful prototypes into production

Skills

Neo4j
Google Cloud
LLM
Python
React

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