GenAI Engineer-Charlotte, NC, Tampa, FL, Raleigh, NC, Durham, NC, Orlando, FL, Columbia, SC, Atlanta, GA.

Remote in Atlanta, GA, US • Posted 2 hours ago • Updated 37 minutes ago
Contract W2
On-site
$DOE
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Job Details

Skills

  • Google Cloud Storage
  • developing
  • Flask
  • Bigquery
  • LangChain
  • LangGraph
  • Vertex AI
  • FastAPI
  • Google Cloud Platform (GCP)
  • Chroma
  • Retrieval-Augmented Generation (RAG)
  • Prompt Engineering
  • Vector Databases (Pinecone
  • Google Gemini
  • Weaviate
  • Milvus)
  • with expertise in designing
  • Experienced in Python
  • Qdrant
  • Cloud Run
  • and REST APIs
  • and deploying scalable Generative AI applications and cloud-native AI solutions.

Summary

Job Title: GenAI Engineer
Location: Charlotte, NC, Tampa, FL, Raleigh, NC, Durham, NC, Orlando, FL, Columbia, SC, Atlanta, GA.
Looking for W2 candidates. No C2C

Job Summary
We are looking for an experienced GenAI Engineer to design and build next-generation AI applications using Google Gemini, Vertex AI, and the Google Cloud Platform (Google Cloud Platform) ecosystem. The ideal candidate will have strong expertise in LangChain, LangGraph, Retrieval-Augmented Generation (RAG), agentic AI workflows, and scalable cloud-native architectures. This role involves building production-grade AI solutions, integrating LLMs into enterprise applications, and developing intelligent multi-agent systems.

Key Responsibilities

  • Design, develop, and deploy Generative AI applications powered by Google Gemini (Pro, Flash, Ultra) and Vertex AI.
  • Build advanced prompt pipelines, RAG applications, and AI workflows using LangChain.
  • Design and implement stateful, multi-agent AI systems using LangGraph.
  • Develop scalable AI solutions utilizing Google Cloud services including Vertex AI Search, BigQuery, Cloud Run, Cloud Storage, and IAM.
  • Build robust data ingestion pipelines supporting multiple document formats.
  • Implement vector search architectures using Vertex AI Vector Search or vector databases such as Chroma, Milvus, Pinecone, Weaviate, or Qdrant.
  • Optimize LLM performance using prompt engineering, few-shot learning, and PEFT techniques.
  • Establish evaluation metrics for LLM accuracy, latency, hallucination detection, and model performance.
  • Implement LLMOps best practices including observability, scalability, monitoring, and security.
  • Develop REST APIs using FastAPI or Flask to expose AI services.
  • Collaborate with Product Managers, Data Engineers, and Front-End Developers to integrate AI capabilities into enterprise applications.

Required Qualifications

  • Strong programming experience in Python.
  • Experience building REST APIs using FastAPI or Flask.
  • Hands-on experience with Google Gemini APIs, Vertex AI, and other enterprise LLM platforms.
  • Strong expertise with Langchain and LangGraph.
  • Experience implementing RAG architecture.
  • Strong knowledge of Google Cloud Platform (Google Cloud Platform).
  • Experience with Vertex AI, IAM, Cloud Run, BigQuery, and Google Cloud Storage.
  • Experience working with Vector Databases including Pinecone, Weaviate, Qdrant, Chroma, or Milvus.
  • Strong SQL and NoSQL database experience.
  • Experience debugging complex AI pipelines and distributed applications.
  • Strong problem-solving and communication skills.

Preferred Qualifications

  • Google Cloud Professional Machine Learning Engineer Certification.
  • Google Cloud Professional Cloud Architect Certification.
  • Experience with Llama Index.
  • Experience with Hugging Face.
  • Experience with React and TypeScript.
  • Knowledge of Agentic AI architectures.
  • Experience with MLOps or LLMOps platforms.

Required Skills

  • Python
  • Google Gemini
  • Vertex AI
  • Google Cloud Platform (Google Cloud Platform)
  • Langchain
  • LangGraph
  • FastAPI
  • Flask
  • RAG
  • Prompt Engineering
  • Vector Databases
  • Pinecone
  • Weaviate
  • Qdrant
  • Chroma
  • Milvus
  • BigQuery
  • Cloud Run
  • Google Cloud Storage
  • REST APIs

Preferred Skills

  • Llama Index
  • Hugging Face
  • React
  • TypeScript
  • PEFT
  • LLMOps
  • Agentic AI
  • Vertex AI Vector Search
  • Few Shot Learning
  • Cloud Architecture

Best Regards:

Lucy Rose
Phone:
Email:

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 10429554
  • Position Id: 2026-1773
  • Posted 2 hours ago

Company Info

About TechniPros, LLC

TechniPros is a fast growing software consulting company offering mission critical consulting solutions to businesses through cutting-edge technologies since 2005. We help our clients successfully respond and capitalize on opportunities by providing professional services in the areas of systems integration and staff supplementation. We aim to deliver innovative and practical solutions, from concept through implementation and maintenance.



To be a pioneer in technology services industry and to attain & sustain a primary place in attaining quality staffing services to support human capital management needs.
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