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MLOps Engineer (AI Platform)

Omilia

España

Presencial

EUR 65.000 - 85.000

Jornada completa

Hoy
Sé de los primeros/as/es en solicitar esta vacante

Descripción de la vacante

A leading AI solutions provider in Spain seeks an experienced MLOps Architect. In this hands-on role, you will design and build scalable infrastructure for AI products, ensuring reliability and automation. Ideal candidates will have extensive experience in Kubernetes and Infrastructure as Code, leading CI/CD pipelines, and managing ML models. Join us to make a significant impact in AI operations while collaborating with top engineering talent.

Servicios

Fixed compensation
Long-term employment with vacation
Professional development opportunities
Proficient and engaging colleagues
Apple gear

Formación

  • 5+ years in a Senior DevOps, SRE, or MLOps role focused on production systems.
  • Expertise in Kubernetes architecture and management.
  • Experience with IaC tools, preferably Terraform.

Responsabilidades

  • Architect and build scalable infrastructure for AI models.
  • Make key technical decisions for ML operations.
  • Collaborate with researchers and engineers to translate research into products.

Conocimientos

Kubernetes management
Infrastructure as Code with Terraform
CI/CD pipelines
Systems-level scripting (Python, Go)
Machine Learning model management

Herramientas

GitLab
Jenkins
Docker
Kubernetes
Terraform
Descripción del empleo
Overview

Are you ready to move beyond maintaining legacy systems and build something truly new? What if your next role gave you the keys to architect an entire AI platform from the ground up, powering systems that serve millions of users? We're looking for a foundational MLOps leader to design, build, and own the infrastructure that will define the future of our AI capabilities.

You will architect and build the automated, scalable infrastructure that powers our entire suite of AI models—from Agentic AI and NLU to Voice Biometrics and ASR—ensuring they operate flawlessly and securely for millions of users. You will make key technical decisions, establishing the patterns and practices that will guide our machine learning operations for years to come.

This is a hands-on technical leadership role for an engineer who wants to make a career-defining impact. You won\'t just be joining a team; you\'ll be setting the standard for how we build, deploy, and operate machine learning at scale.

Your Mission : Architecting the Future of AI Operations

As our first dedicated MLOps Architect, you will have the autonomy and resources to build our ML platform from scratch. You will be responsible for the entire lifecycle of our production AI systems, ensuring they are reliable, secure, and automated. You will :

Responsibilities
  • Architect and build the automated, scalable infrastructure that powers our entire suite of AI models—from Agentic AI and NLU to Voice Biometrics and ASR—ensuring they operate flawlessly and securely for millions of users.
  • Make key technical decisions , establishing the patterns, tools, and best practices that will guide our machine learning operations for years to come.
  • Collaborate closely with world-class researchers, data scientists, ML engineers, and cloud architects to translate cutting-edge research into robust, production-grade products.
  • Champion a culture of automation, governance, and performance across all our AI / ML initiatives.
Impact & Challenges
  • Infrastructure as Code (IaC) Foundation: Design and implement our MLOps infrastructure on AWS from the ground up using Terraform, establishing best practices for security, scalability, and cost-efficiency.
  • CI / CD for Machine Learning: Build and own end-to-end CI / CD pipelines using GitLab and Jenkins, automating model training and deployment processes including canaries and production rollbacks.
  • Containerization & Orchestration at Scale: Lead productization of ML models, containerizing with Docker and deploying on Kubernetes; help architect, build, and manage the platform with Helm.
  • Proactive Observability: Establish a culture of deep system insight with a comprehensive observability stack (e.g., Prometheus and Grafana) to meet performance, reliability, and security SLAs.
What You'll Bring to the Team

We are looking for an experienced engineer with a builder\'s mindset and a passion for creating elegant, scalable systems. You have a proven track record of operating critical infrastructure at scale and thrive in an environment where you can take ownership and drive technical strategy.

Requirements

  • 5+ years in a Senior DevOps, SRE, or MLOps role with a focus on production systems
  • Deep expertise in architecting and managing Kubernetes clusters in a production environment.
  • Proven mastery of at least one major IaC tool (Terraform is strongly preferred).
  • Strong proficiency in a systems-level scripting language (e.g., Python, Go).
  • A track record of building and maintaining CI / CD pipelines for critical production services.
  • Direct experience deploying and managing specific ML models (e.g., Agentic AI, NLU, ASR, TTS).
  • Experience with dedicated ML workflow orchestration tools (e.g., Kubeflow, Apache Airflow).
  • Familiarity with ML experiment tracking and model registry tools (e.g., MLflow, SageMaker Model Registry).
  • Experience deploying models on specialized hardware (e.g., GPUs, Inferentia, Trainium, etc.).
Benefits
  • Fixed compensation;
  • Long-term employment with the working days vacation;
  • Development in professional growth (courses, training, etc);
  • Being part of successful cutting-edge technology products that are making a global impact in the service industry;
  • Proficient and fun-to-work-with colleagues;
  • Apple gear.

Omilia is proud to be an equal opportunity employer and is dedicated to fostering a diverse and inclusive workplace. We believe that embracing diversity in all its forms enriches our workplace and drives our collective success. We are committed to creating an environment where everyone feels welcomed, valued, and empowered to contribute their unique perspectives without regard to factors such as race, color, religion, gender, gender identity or expression, sexual orientation, national origin, heredity, disability, age, or veteran status, all eligible candidates will be given consideration for employment.

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