AWS AI Engineer / USC and GC Candidates can ONLY Apply

Hudson Manpower
  • San Jose, California
  • Remote
    30+ days ago

    Job Description

    Job description

    Job Title: AWS AI Engineer

    Location: REMOTE USA

    TOP SKILLS:

    Must Have

    AWS services- Bedrock, SageMaker, ECS and Lambda

    Demonstrated experience with AWS organizations and policy guardrails (SCP, AWS Config)

    Experience implementing RAG architectures and using frameworks and ML tooling like: Transformers, PyTorch, TensorFlow, and LangChain

    Experience in Infrastructure as Code best practices and experience with building Terraform modules for AWS cloud

    Fine-tuning large language models, building datasets and deploying ML models to production

    Git-based version control, code reviews, and DevOps workflows

    Nice To Have

    AWS or relevant cloud certifications

    Data privacy and compliance best practices (e.g., PII handling, secure model deployment)

    Data science background or experience working with structured/unstructured data

    Exposure to FinOps and cloud cost optimization

    Hugging Face, Node.js

    Policy as Code development (I.e. Terraform Sentinel)

    What You’ll Do

    GENERAL FUNCTION:

    We are hiring a Sr AI AWS Engineer who has actually built AI/ML applications in cloud—not just read about them. This role centers on hands-on development of retrieval-augmented generation (RAG) systems, fine-tuning LLMs, and AWS-native microservices that drive automation, insight, and governance in an enterprise environment. You’ll design and deliver scalable, secure services that bring large language models into real operational use—connecting them to live infrastructure data, internal documentation, and system telemetry.

    You’ll be part of a high-impact team pushing the boundaries of cloud-native AI in a real-world enterprise setting. This is not a prompt-engineering sandbox or a resume keyword trap. If you’ve merely dabbled in BedRock, mentioned RAG on LinkedIn, or read about vector search—this isn’t the right fit. We’re looking for candidates who have architected, developed, and supported AI/ML services in production environments.

    This is a builder’s role within our Public Cloud AWS Engineering team. We aren’t hiring buzzword lists or conference attendees. If you’ve built something you’re proud of—especially if it involved real infrastructure, real data, and real users—we’d love to talk. If you’re still learning, that’s great too—but this isn’t an entry-level role or a theory-only position.

    DUTIES AND RESPONSIBILITIES:

    Hands-on role using AWS (Lambda, Bedrock, SageMaker, Step Functions, DynamoDB, S3).

    Responsible for the implementation of AWS cloud services including infrastructure, machine learning, and artificial intelligence platform services.

    Experience with LLM-based applications, including Retrieval-Augmented Generation (RAG) using LangChain and other frameworks.

    Develop cloud-native microservices, APIs, and serverless functions to support intelligent automation and real-time data processing.

    Collaborate with internal stakeholders to understand business goals and translate them into secure, scalable AI systems.

    Own the software release lifecycle, including CI/CD pipelines, GitHub-based SDLC, and infrastructure as code (Terraform).

    Support the development and evolution of reusable platform components for AI/ML operations.

    Create and maintain technical documentation for the team to reference and share with our internal customers.

    Excellent verbal and written communication skills in English.

    SUPERVISORY RESPONSIBILITIES: None

    MINIMUM KNOWLEDGE, SKILLS, AND ABILITIES REQUIRED:

    7 years of hands-on software engineering experience with a strong focus on Python.

    Experienced with AWS services, especially Bedrock or SageMaker

    Familiar with fine-tuning large language models or building datasets and/or deploying ML models to production.

    Demonstrated experience with AWS organizations and policy guardrails (SCP, AWS Config).

    Solid experience implementing RAG architectures and LangChain.

    Demonstrated experience in Infrastructure as Code best practices and experience with building Terraform modules for AWS cloud.

    Strong background in Git-based version control, code reviews, and DevOps workflows.

    Demonstrated success delivering production-ready software with release pipeline integration.

    Nice-to-Haves:

    AWS or relevant cloud certifications.

    Policy as Code development (e.g., Terraform Sentinel).

    Experience with Hugging Face, Golang, or Node.js.

    Exposure to FinOps and cloud cost optimization.

    Data science background or experience working with structured/unstructured data.

    Awareness of data privacy and compliance best practices (e.g., PII handling, secure model deployment).

    What You’ll Get

    Competitive base salary

    Medical, dental, and vision insurance coverage

    Optional life and disability insurance provided

    401(k) with a company match and optional profit sharing

    Paid vacation time

    Paid Bench time

    Training allowance offering

    You’ll be eligible to earn referral bonuses!

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    Numbers & Facts

    LocationSan Jose, California (
    Remote
    )
    Websitehttps://www.hudsonmanpower.com

    Skills

    • AWS Lambdaunmatched
    • Amazon Simple Storage Service (S3)unmatched
    • Amazon Web Services (AWS)unmatched
    • Application Programming Interface (API)unmatched
    • Artificial Intelligence (AI)unmatched
    • Automationunmatched
    • Best Practicesunmatched
    • Cloud Computingunmatched
    • Code Reviewsunmatched
    • Communication Skillsunmatched
    • Continuous Deployment/Deliveryunmatched
    • Continuous Integrationunmatched
    • Cost Controlunmatched
    • Data Processingunmatched
    • Data Scienceunmatched
    • DevOpsunmatched
    • Documentationunmatched
    • English Languageunmatched
    • Gitunmatched
    • GitHubunmatched
    • Infrastructure as a Service (IaaS)unmatched
    • Intelligence Agenciesunmatched
    • LinkedInunmatched
    • Machine Learningunmatched
    • Machine Toolunmatched
    • Microservicesunmatched
    • Modeling Languagesunmatched
    • Node.jsunmatched
    • Policy Developmentunmatched
    • Presentation/Verbal Skillsunmatched
    • Production Systemsunmatched
    • Public Cloudunmatched
    • Software Development Lifecycle (SDLC)unmatched
    • Software Engineeringunmatched
    • Source Code/Configuration Management (SCM)unmatched
    • Structured Dataunmatched
    • Systems Scalabilityunmatched
    • Technical Writingunmatched
    • Telemetryunmatched
    • Training Data Setsunmatched
    • Unstructured Dataunmatched
    • Writing Skillsunmatched

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