AI Platform Engineer

Computer Enterprises Inc

  • Dallas, TX
  • Today
  • Remote

    Highlights

    The ideal candidate has hands-on experience building production AI systems, integrating Large Language Models (LLMs), orchestrating multi-agent workflows, and deploying cloud-native applications that support real-world business processes. This role will focus on developing agentic AI applications, Retrieval-Augmented Generation (RAG) systems, LLM-powered workflows, and scalable AI platforms using Python and modern AI frameworks.

    Numbers & Facts

    LocationDallas, TX (
    Remote
    )

    Description

    Role: Senior Agentic AI Developer
    Location: Remote
    Schedule: EST Hours
    Rate: $85/hour W2

    We are seeking a Senior Agentic AI Developer to design, build, and deploy enterprise-grade AI agents and intelligent automation solutions. This role will focus on developing agentic AI applications, Retrieval-Augmented Generation (RAG) systems, LLM-powered workflows, and scalable AI platforms using Python and modern AI frameworks.
    The ideal candidate has hands-on experience building production AI systems, integrating Large Language Models (LLMs), orchestrating multi-agent workflows, and deploying cloud-native applications that support real-world business processes.

    Responsibilities
    • Design, develop, and deploy agentic AI applications using modern LLM frameworks and orchestration platforms.
    • Build Retrieval-Augmented Generation (RAG) solutions leveraging enterprise data sources, vector databases, and semantic search technologies.
    • Develop AI agents capable of tool calling, workflow automation, reasoning, and decision support.
    • Create scalable APIs and backend services to support AI-enabled products and applications.
    • Design and implement document ingestion, knowledge retrieval, embedding generation, and context management pipelines.
    • Collaborate with product, engineering, and business teams to identify and deliver AI-driven solutions.
    • Evaluate, test, and optimize LLM performance, response quality, latency, and reliability.
    • Implement monitoring, observability, security, and governance controls for enterprise AI systems.
    • Participate in architecture discussions, proof-of-concept development, and technical design reviews.
    • Create and maintain technical documentation, implementation plans, and best practices for AI development.

    Required Qualifications
    • Bachelor's degree in Computer Science, Software Engineering, Data Science, or a related technical field.
    • 5+ years of software development experience with strong proficiency in Python.
    • Experience building and deploying Generative AI, LLM, or Agentic AI solutions in production environments.
    • Experience developing RAG architectures and integrating vector databases.
    • Strong understanding of prompt engineering, embeddings, semantic search, and LLM evaluation techniques.
    • Experience building APIs and microservices using Python frameworks such as FastAPI.
    • Experience with cloud platforms such as AWS, Azure, or GCP.
    • Experience with containerization and deployment technologies including Docker and Kubernetes.
    • Strong troubleshooting, debugging, and problem-solving skills.

    Preferred Qualifications
    • Experience with LangChain, LangGraph, CrewAI, AutoGen, or similar agent orchestration frameworks.
    • Experience integrating AI agents with enterprise systems, databases, APIs, and workflow platforms.
    • Familiarity with OpenAI, Anthropic, Azure OpenAI, Amazon Bedrock, or other enterprise LLM platforms.
    • Experience with MLOps, LLMOps, and AI governance practices.
    • Experience developing multi-agent systems and autonomous workflow solutions.
    • Exposure to Go or other backend programming languages.

    Technical Environment
    • Python
    • FastAPI
    • LangChain / LangGraph
    • OpenAI, Claude, Azure OpenAI, Amazon Bedrock
    • Retrieval-Augmented Generation (RAG)
    • Vector Databases
    • Docker & Kubernetes
    • AWS / Azure / GCP
    • REST APIs & Microservices
    • Git, CI/CD Pipelines
    • LLMOps & Monitoring Frameworks


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