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Full Time job: Sr/ AI/ML Engineer (GenAI & Agentic AI / Whippany, NJ
VeridianTechHanover, NJ🇺🇸United StatesPosted 12 Jul 2026
Quick Overview
Salary
$140k - $145k/yr
Work Type
Hybrid
Level
Mid Senior
Job Description
Job Title: Sr/ AI/ML Engineer (GenAI & Agentic AI)
Duration: Full Time
Location : Whippany, NJ 07981 (Hybrid)
Salary range: $140k to $145k
Experience Required: 5+ years in AI/ML
GenAI Experience: Minimum 2 years (hands on)
Agentic AI Experience: Minimum 6 months (CrewAI / AutoGen / LangGraph / LangChain Agents)
GenAI Experience: Minimum 2 years (hands on)
Agentic AI Experience: Minimum 6 months (CrewAI / AutoGen / LangGraph / LangChain Agents)
Role Summary
We are seeking a skilled GenAI & Agentic AI Engineer with strong experience in building end to end AI/ML solutions, Generative AI applications, and agent based automation workflows. The ideal candidate will have a solid background in machine learning along with hands on expertise in LLMs, RAG, embeddings, vector databases, and Agentic AI frameworks such as CrewAI, AutoGen, LangGraph, or LangChain Agents.
Key Responsibilities
Build and deploy GenAI applications using LLMs (OpenAI, Azure OpenAI, Claude, Gemini, Llama, etc.).
Develop Agentic AI workflows using frameworks such as CrewAI, AutoGen, LangGraph, or LangChain Agents.
Design and implement RAG pipelines, vector search solutions, and embedding based retrieval systems.
Build scalable AI services using Python, FastAPI/Flask, and cloud platforms (Azure/AWS/Google Cloud Platform).
Collaborate with cross functional teams to define use cases and convert them into production ready GenAI solutions.
Implement hallucination reduction, prompt engineering strategies, and model evaluation methods.
Integrate LLMs with enterprise applications, APIs, and automation workflows.
Work with vector databases (FAISS, Pinecone, Chroma, Weaviate) for semantic search.
Monitor, evaluate, and optimize GenAI models for accuracy, performance, and cost.
Develop Agentic AI workflows using frameworks such as CrewAI, AutoGen, LangGraph, or LangChain Agents.
Design and implement RAG pipelines, vector search solutions, and embedding based retrieval systems.
Build scalable AI services using Python, FastAPI/Flask, and cloud platforms (Azure/AWS/Google Cloud Platform).
Collaborate with cross functional teams to define use cases and convert them into production ready GenAI solutions.
Implement hallucination reduction, prompt engineering strategies, and model evaluation methods.
Integrate LLMs with enterprise applications, APIs, and automation workflows.
Work with vector databases (FAISS, Pinecone, Chroma, Weaviate) for semantic search.
Monitor, evaluate, and optimize GenAI models for accuracy, performance, and cost.
Required Skills & Experience
5+ years of experience in AI/ML, including model development, data preprocessing, EDA, training, and evaluation.
2+ years of hands on experience in Generative AI (LLMs, embeddings, RAG, LLM based apps).
6+ months of hands on experience with Agentic AI frameworks (CrewAI / AutoGen / LangGraph / LangChain Agents).
Strong proficiency in Python and ML libraries (Scikit learn, Pandas, NumPy).
Experience with OpenAI APIs, Azure OpenAI, HuggingFace, and prompt engineering.
Familiarity with building scalable APIs using FastAPI, Flask, or Django.
Hands on knowledge of cloud services (Azure/AWS/Google Cloud Platform) for AI deployment.
Strong understanding of REST APIs, microservices, and integration patterns.
Experience with Git, CI/CD, Docker, and model deployment best practices.
2+ years of hands on experience in Generative AI (LLMs, embeddings, RAG, LLM based apps).
6+ months of hands on experience with Agentic AI frameworks (CrewAI / AutoGen / LangGraph / LangChain Agents).
Strong proficiency in Python and ML libraries (Scikit learn, Pandas, NumPy).
Experience with OpenAI APIs, Azure OpenAI, HuggingFace, and prompt engineering.
Familiarity with building scalable APIs using FastAPI, Flask, or Django.
Hands on knowledge of cloud services (Azure/AWS/Google Cloud Platform) for AI deployment.
Strong understanding of REST APIs, microservices, and integration patterns.
Experience with Git, CI/CD, Docker, and model deployment best practices.
Skills
Django
Docker
FastAPI
Flask
Microservices
AWS
Machine Learning
NumPy
Azure
Generative AI
Git
Google Cloud
LLM
Pandas
Python
REST
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