DevSecOps AgentOps Engineer confirmé - Bordeaux - H/F

Atos SE

Chevanceaux

Sur place

EUR 90 000 - 115 000

Plein temps

Il y a 3 jours
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Résumé du poste

Atos seeks a DevSecOps / AgentOps Engineer to join a cloud-native Data & AI platform responsible for industrialisation and production deployment of Data, ML, GenAI and AI Agent use cases. You will work with Data Engineers, Data Scientists, ML Engineers and Software Engineers to ensure secure, observable, scalable production workloads.

You will integrate security into the development lifecycle, automate infrastructure, and manage multi-cloud environments while advancing DevSecOps, DataOps, MLOps

Qualifications

  • Minimum 5 years of professional experience in DevOps/DevSecOps or Platform Engineering.
  • Hands-on experience with Kubernetes in production.
  • Strong knowledge of GitOps, CI/CD, and Infrastructure as Code.
  • Experience with cloud environments (AWS, Azure, GCP) and multi-cloud.
  • Security by design and secure software development practices.

Responsabilités

  • Design, operate and secure a production platform built on Kubernetes.
  • Implement CI/CD pipelines and GitOps workflows.
  • Apply IaC to manage infrastructure and configurations.
  • Deploy and manage cloud/multi-cloud environments.
  • Embed DevSecOps practices across build, test and deployment pipelines.
  • Secure images, secrets, IAM/RBAC, and ensure observability and resilience.
  • Industrialise Data, ML, GenAI and AI Agents pipelines.
  • Monitor, log and trace platform performance.

Connaissances

Kubernetes
CI/CD pipelines
GitOps
Infrastructure as Code
Cloud platforms
Security by Design

Outils

GitLab CI
GitHub Actions
Jenkins
Argo CD
Flux
Terraform
Ansible
Python
MLflow

Description du poste

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Publication Date: Sep 25, 2026

Ref. No: 551657

Location: Pessac, FR

Atos is the Atos Group brand dedicated to AI-powered, secure, end-to-end digital services. Atos designs, develops, and operates critical digital environments that drive performance, resilience and sovereignty, helping public and private organizations worldwide retain control over their data and infrastructures, while meeting regulatory requirements.

With more than 52,000 employees serving over 4,500 clients across 54 countries, Atos helps modernize core IT systems, accelerate cloud and data transformation, strengthen cybersecurity, and deliver secure digital workplace environments to support its clients, its employees and society. Atos also provides consulting and advisory services through its Atos Amplify brand.
A trusted partner in operating complex and mission-critical environments, Atos supports organizations across highly regulated and sovereign contexts.

Atos Group is a global leader in digital transformation with c. 54,000 employees and annual revenue of c. €7.2 billion, operating in 54 countries under two brands - Atos for services and Eviden for products and systems. European number one in cybersecurity and a leader in cloud, Atos Group is committed to a secure and decarbonized future and provides tailored AI-powered, end-to-end solutions for all industries. Atos Group is listed on Euronext Paris.

We are looking for aDevSecOps / AgentOps Engineer to join a cloud-native Data & AI platform dedicated to the industrialisation and production deployment of Data, Machine Learning, Generative AI and AI Agent use cases.

Working within a multidisciplinary team of Data Engineers, Data Scientists, ML Engineers and Software Engineers, you will be responsible for the industrialisation, deployment, observability, security and operational reliability of the platform and its AI workloads in production.

Key Responsibilities

You will be responsible for:

  • designing, evolving and operating a platform built on Kubernetes;
  • designing and automating CI/CD pipelines;
  • implementing GitOps practices;
  • automating infrastructure and environments through Infrastructure as Code;
  • deploying and operating cloud / multi-cloud environments;
  • embedding DevSecOps practices into build, testing and deployment pipelines;
  • securing container images, dependencies, secrets, APIs and workloads;
  • industrialising Data, ML, GenAI and AI Agent pipelines;
  • implementing and operating monitoring, logging, metrics and distributed tracing;
  • ensuring platform performance, availability, resilience and scalability;
  • securing environments, identities and access management;
  • continuously improving DevOps, DevSecOps, DataOps, MLOps and AgentOps practices.
DevSecOps Scope

You will integrate security directly into the development, deployment and operational lifecycle of the platform.

This includes:

  • dependency and vulnerability scanning;
  • container image security scanning;
  • Kubernetes configuration and Infrastructure as Code security controls;
  • secure secrets management;
  • IAM and RBAC policies;
  • implementation of least-privilege principles;
  • API and workload security;
  • automation of security controls;
  • contribution to Security by Design and Shift-Left Security practices.
AgentOps / GenAI Scope

You will also be responsible for the industrialisation and operational management of AI Agents in production.

This includes:

  • CI/CD and automated deployment of AI agents;
  • versioning of models, prompts, configurations and components;
  • supervision of AI agents and agentic workflows;
  • observability of logs, traces, metrics and LLM calls;
  • monitoring service quality and runtime performance;
  • tracking latency, consumption and inference costs;
  • implementing kill switch mechanisms and operational controls;
  • securing agents, APIs, models and secrets;
  • incident management and production operations;
  • contributing to the reliability and resilience of agentic systems.
Target Technical Environment
  • CI/CD & GitOps
    GitLab CI / GitHub Actions / Jenkins, Argo CD / Flux
  • Infrastructure as Code
    Terraform, Ansible
  • Cloud
    AWS, Azure, GCP or hybrid / multi-cloud environments
  • Security / DevSecOps
    IAM, RBAC, Vault, Secrets Management, SAST, DAST, SCA, Container Security, Policy as Code
  • Data / ML / AI
    Python, MLflow, ML pipelines, Model Serving, APIs, LLMs, RAG, AI Agents
Candidate Profile

We are looking for a candidate with at least 5 years of professional experience, excluding internships and apprenticeships / work-study programmes.

The candidate must also demonstrate at least 4 years of hands-on, operational and directly relevant experience on assignments related to DevOps, DevSecOps, Platform Engineering, SRE, MLOps or the industrialisation of Data & AI platforms.

Academic experience, training projects, isolated Proofs of Concept, or experience without real production exposure will not be considered equivalent to operational experience.

A strong background in production environments is expected, with demonstrable experience in areas such as:

  • availability and resilience;
  • production operations and run activities;
  • monitoring and observability;
  • security;
  • CI/CD and automation;
  • deployment of containerised workloads;
  • industrialisation of Data and AI platforms or services.

You should have solid hands-on expertise in several of the following areas:

  • Kubernetes in production environments;
  • CI/CD and GitOps;
  • Terraform / Infrastructure as Code;
  • pipeline and workload security;
  • monitoring and observability;
  • operation of distributed platforms;
  • cloud or multi-cloud environments;
  • IAM, RBAC and secrets management;
  • Python / Bash scripting;
  • industrialisation of Data or Machine Learning workloads.

Hands-on experience with MLOps, LLMOps, Generative AI or AgentOps environments is a strong advantage.

Mandatory Experience Requirements
  • Minimum 5 years of professional experience, excluding internships and apprenticeships / work-study programmes.
  • Minimum 4 years of concrete, operational and directly relevant experience aligned with the scope of the role.

The candidate must be able to demonstrate real contributions to production environments, rather than purely theoretical knowledge or occasional exposure to the technologies listed above.

Role Focus

Primary focus: Run / Observability / Security / Industrialisation

The role sits at the intersection of Platform Engineering, DevOps, DevSecOps, MLOps and AgentOps, with one clear objective: enabling Data & AI teams to deploy and operate use cases efficiently while ensuring security, observability, resilience, cost control and production-grade reliability.

Here at Atos, diversity and inclusion are embedded in our DNA. Read more about our commitment to a fair work environment for all.

Atos is a recognized leader in its industry across Environment, Social and Governance (ESG) criteria. Find out more on our CSR commitment.

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