Artificial Intelligence/AI Engineer (AWS/Agentic AI/GenAI)

InSource, Inc · Reading, PA

Spotted 56m agoother
Job description

About this role

Employer-provided description, formatted for easier reading.

Artificial Intelligence/AI Engineer (AWS/Agentic AI/GenAI)

*Visa sponsorship is NOT available, so NO visa candidates please – NO 3rd party vendors reachout – Direct W2 candidates ONLY*

Reading, PA OR Tampa, FL | Hybrid (2-3 days onsite per week) | Contract-to-Hire (or Direct Hire, client is flexible)

One onsite interview is required | Local candidates to work onsite & appear for onsite interview

Please send resume to: aghosh@copiastaffing. com

Summary

We are seeking an experienced AI Engineer to design, build, and deploy production-ready AI and machine learning solutions in a large enterprise environment.

This is a hands-on engineering role focused on building intelligent applications, agentic AI workflows, and scalable ML solutions on AWS. The ideal candidate combines strong Python/software engineering skills with practical experience in Generative AI, machine learning, and cloud-based AI platforms.

Responsibilities

  • Design and develop AI-powered applications and agentic workflows using Python 3.11+.
  • Build, train, deploy, and monitor ML models using Amazon SageMaker.
  • Develop end-to-end ML workflows covering feature engineering, deployment, monitoring, and model lifecycle management.
  • Build agentic and multi-agent AI solutions using LangGraph, CrewAI, AutoGen, or similar frameworks.
  • Work with LLMs, RAG architectures, prompt engineering, and knowledge retrieval.
  • Integrate AI agents with APIs, enterprise systems, databases, and external tools.
  • Utilize AWS Bedrock and emerging AgentCore capabilities for enterprise agentic AI.
  • Use Dataiku for data preparation, analytics, feature engineering, and ML workflows.
  • Partner with data scientists, architects, engineering teams, and business stakeholders to operationalize AI solutions.
  • Develop reusable AI components and deployment patterns with an emphasis on scalability, reliability, security, observability, and cost.

Qualifications

  • Strong hands-on Python development experience.
  • Experience developing production AI/ML applications.
  • Hands-on Amazon SageMaker experience.
  • Experience with Generative AI, LLMs, RAG, and agentic AI architectures.
  • Experience with agent orchestration frameworks such as LangGraph, CrewAI, AutoGen, or equivalent.
  • Strong understanding of ML engineering, MLOps, model deployment, monitoring, and lifecycle management.
  • AWS cloud experience.
  • Experience integrating APIs, databases, or enterprise applications into AI solutions.

Highly Preferred

  • Dataiku
  • AWS Bedrock / AgentCore
  • Model Context Protocol (MCP)
  • Vector databases and knowledge retrieval
  • LangChain or LlamaIndex
  • Docker, Kubernetes, Terraform, GitHub Actions, or CI/CD
  • Experience building AI solutions in a large enterprise environment
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