via Lever · 26 de septiembre de 2026 ·hace 3 días

MLOps Field Engineer

jobgether
Spain Tiempo completo
Este anuncio proviene de Lever
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Accountabilities:

  • Design and architect AI/ML, MLOps, data engineering, and cloud infrastructure solutions aligned with customer workloads and business requirements.

  • Work across the Linux technology stack, including networking, storage, containers, applications, and infrastructure.

  • Architect and deploy solutions using Kubernetes, Kubeflow, OpenStack, Spark, and related open source technologies.

  • Deliver solutions across on-premises environments and major public cloud platforms, including AWS, Azure, and Google Cloud.

  • Engage directly with customers to understand technical and business requirements and recommend appropriate open source solutions.

  • Deploy, test, troubleshoot, and validate technical solutions before handing them over to support or managed services teams.

  • Develop infrastructure automation and Kubernetes capabilities using Python and other relevant technologies.

  • Deliver technical presentations, demonstrations, workshops, and training sessions covering cloud, Linux, AI/ML, and open source technologies.

  • Collaborate closely with enterprise sales teams to support customer engagements, develop opportunities, and achieve shared commercial objectives.

  • Work with product and engineering teams to communicate customer requirements, provide technical feedback, and influence product and technology roadmaps.

  • Contribute to a collaborative engineering culture and share knowledge across a globally distributed technical community.

  • Travel internationally for customer engagements, industry events, internal events, and project-related activities, with travel potentially reaching 30% of working time.

Requirements


  • Professional experience in MLOps, data engineering, big data, cloud infrastructure, or the deployment of machine learning and analytics solutions.

  • Practical experience with Linux, virtualization, containers, networking, and cloud infrastructure.

  • Experience with Kubernetes and familiarity with cloud platforms such as AWS, Azure, or Google Cloud.

  • Working knowledge of MLOps, AI/ML infrastructure, data processing pipelines, distributed systems, or large-scale analytics environments.

  • Intermediate Python programming skills, with experience in another language such as R or Rust considered an advantage.

  • Understanding of open source technologies and an interest in enterprise applications of private cloud, machine learning, AI, data, and analytics.

  • Ability to design technical architectures and translate complex customer requirements into practical infrastructure and solution designs.

  • Strong customer-facing communication skills, with the ability to explain technical concepts through presentations, demonstrations, workshops, and discussions.

  • Business-minded approach with the ability to balance technical quality, customer needs, and commercial objectives.

  • Demonstrated problem-solving ability, initiative, and willingness to take ownership of complex projects.

  • Strong interpersonal skills, curiosity, flexibility, accountability, and a results-oriented mindset.

  • Confidence to exchange feedback, challenge ideas respectfully, and contribute actively to technical discussions.

  • Passion for technology demonstrated through personal projects, continuous learning, open source involvement, or technical initiatives.

  • Strong written and spoken English with excellent presentation skills.

  • A technical undergraduate degree or a compelling alternative educational or professional background.

  • Ability to work effectively with colleagues and customers across multicultural, multinational, and distributed environments.

  • Willingness and ability to travel internationally for customer meetings, industry events, and company gatherings.
Benefits:
  • Geographically adjusted compensation based on location, experience, and performance.

  • Performance-driven annual bonus or commission in addition to base compensation.

  • Fully distributed work environment with twice-yearly in-person team sprints.

  • Personal learning and development budget of USD 2,000 per year.

  • Annual compensation review.

  • Recognition rewards.

  • 40 days of annual leave per year, including public holidays and company-wide holiday periods.

  • Maternity and paternity leave.

  • Team Member Assistance Program and Wellness Platform.

  • Opportunities to travel internationally and collaborate with colleagues in different locations.

  • Priority Pass access and travel upgrades for eligible long-haul company events.

  • Hands-on exposure to AI/ML infrastructure, data processing pipelines, distributed training, Kubernetes, and emerging open source technologies.

  • Opportunities to work directly with customers across a wide range of industries and technical environments.

El mercado para este tipo de puesto

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