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    TE

    TechBiz Global GmbH

    Technology

    Senior AI DevOps / LLMOps

    Krakow, PolandRemoteFull-time10+ yrs experiencePosted 1mo ago
    All TechBiz Global GmbH jobs

    Job description

    At TechBiz Global, we are providing recruitment service to our TOP clients from our portfolio. We are currently seeking an Senior AI DevOps / LLMOps specialist to join one of our clients' teams. If you're looking for an exciting opportunity to grow in a innovative environment, this could be the perfect fit for you.

    Key Responsibilities

    1. Automation of Build-to-Production

    - Design and implement robust CI/CD pipelines tailored for AI, covering model weights,

    dataset versioning, and application code.

    - Develop specialized workflows for PromptOps, ensuring that system prompts are

    version-controlled, tested for regressions, and deployed with the same rigor as traditional

    code.

    -Automate the deployment of Agentic workflows, managing the complexities of stateful

    AI interactions and multi-agent handoffs.

    2. AI Infrastructure as Code (IaC)

    - Provision and manage high-performance compute environments (GPU clusters, TPU

    pods) using Terraform, Pulumi, or Ansible.

    - Define and enforce Policy-as-Code for AI endpoints to ensure compliance with security,

    cost-usage limits, and data residency requirements.

    - Maintain a consistent environment across Hybrid Infrastructure, ensuring seamless

    parity between On-Premises development and Cloud production.

    3. Safe Experimentation & Controlled Releases

    - Architect Progressive Delivery strategies for AI, including Canary releases, Blue-Green

    deployments, and Shadowing (where new models run in parallel with production to

    compare outputs).

    - Build “Evaluation-in-the-Loop” gates within the pipeline to automatically test for bias,

    hallucination, and performance degradation before a release.

    - Implement A/B testing frameworks specifically designed for LLM outputs and agentic

    behavior.

    4. Monitoring & Observability

    - Establish deep observability into Inference Endpoints, tracking metrics like tokens-per-

    second, latency, and drift in model accuracy.

    -Integrate feedback loops that capture production “edge cases” to feed back into the

    training and fine-tuning pipelines.

    Must-Have Technical Skills:

    -Orchestration: Advanced Kubernetes (K8s) skills, specifically with KubeFlow, Ray, or

    NVIDIA Triton.

    -CI/CD & IaC: Expertise in GitHub Actions/GitLab CI, and Terraform or Pulumi.

    - AI Tooling: Experience with Weights & Biases, MLflow, LangSmith, or Arize

    Phoenix.

    -Hardware: Understanding of GPU virtualization, CUDA drivers, and on-premises

    hardware management.
    -Security: Familiarity with Open Policy Agent (OPA) and secret management (Vault).

    Experience:

    - 10+ years in DevOps, SRE, or Cloud Engineering.

    - 2+ years of hands-on experience in MLOps or LLMOps, specifically moving LLMs

    from notebook to production.

    -Proven experience managing Hybrid Cloud environments (e.g., AWS/Azure + Private

    Data Center).

    Job details are sourced from the employer's original posting.

    Open job posting
    TE

    About the company

    TechBiz Global GmbH

    A global technology business solutions provider.

    View all TechBiz Global GmbH jobs
    Industry
    Technology
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