MLOps Field Engineer

Jobgether

France

Sur place

EUR 65 000 - 100 000

Plein temps

Il y a 5 jours
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Résumé du poste

Partner Company in France is seeking an MLOps Field Engineer to design and deploy ML and data infrastructures across Linux, Kubernetes, and leading OSS tools. This role blends technical consulting with hands-on implementation, including distributed training, real-time analytics, and high-performance AI workloads.

You will translate customer requirements into scalable infrastructure, collaborate with sales, and influence product directions by sharing insights.

Qualifications

  • Bachelor’s degree in a technical discipline or equivalent experience.
  • Experience in data engineering, MLOps, analytics, or deployment of big data solutions.
  • Hands-on programming with Python (intermediate level).
  • Strong knowledge of Linux, virtualization, containers, networking, and cloud concepts.
  • Experience with Kubernetes and cloud platforms (AWS, Azure, Google Cloud).
  • Understanding of enterprise open-source technologies, private clouds, ML/AI, data platforms, and analytics.
  • Experience in customer-facing environments is valuable.
  • Excellent English communication and presentation skills.
  • Willingness to travel internationally up to 30%.

Responsabilités

  • Architect cloud infrastructure and ML solutions using Kubernetes, Kubeflow, OpenStack, Spark.
  • Design across the Linux stack: networking, storage, virtualization, containers, and apps.
  • Deliver on-prem and public cloud solutions on AWS, Azure, and Google Cloud.
  • Gather requirements and recommend open-source technologies and infra.
  • Deploy, test, and hand over solutions to support teams.
  • Deliver architecture presentations and training sessions for customers.
  • Collaborate with sales to map customer needs to solutions.
  • Provide feedback to product/engineering from customer input.
  • Develop Python-based solutions and Kubernetes operators as needed.
  • Travel internationally up to 30%.

Connaissances

Kubernetes
Python
Linux
Cloud platforms
Open-source tech
English communication
MLOps
Data engineering
Customer-facing

Formation

Bachelor’s degree in technical field

Outils

Kubeflow
OpenStack
Spark
AWS
Azure
Google Cloud

Description du poste

This position is listed on behalf of a partner company, who manages all applications and next steps. Our partner is looking for a MLOps Field Engineer based in France.

Join a global Field Engineering team helping organizations adopt modern AI and machine learning technologies across public and private cloud environments.

You will design and deliver sophisticated ML and data architectures using Linux, Kubernetes, and leading open-source technologies.

The role combines technical consulting, solution architecture, customer engagement, and hands-on implementation rather than traditional software development.

You will solve complex challenges involving distributed training, large-scale data processing, real-time analytics, and high-performance AI workloads.

Working closely with sales and technical teams, you will translate customer requirements into scalable, practical infrastructure solutions.

You will also influence product direction by sharing customer insights and technical feedback with engineering and product teams.

This is an opportunity to work directly with customers while gaining hands-on exposure to emerging AI, MLOPs, cloud, and open-source technologies.

Accountabilities
  • Architect cloud infrastructure and AI/ML solutions using technologies such as Kubernetes, Kubeflow, OpenStack, Spark, and public cloud platforms.
  • Work across the Linux technology stack, including networking, storage, infrastructure, virtualization, containers, and applications.
  • Design and deliver solutions for both on-premises environments and public clouds such as AWS, Azure, and Google Cloud.
  • Gather customer business and technical requirements and recommend appropriate open-source technologies and infrastructure solutions.
  • Deploy, test, validate, and hand over technical solutions to support or managed services teams following project completion.
  • Deliver technical presentations, demonstrations, architecture discussions, and training sessions for prospective and existing customers.
  • Collaborate closely with sales teams to develop solutions that address customer requirements and contribute to shared commercial objectives.
  • Provide technical feedback to product and engineering teams based on customer requirements, implementation experience, and emerging market needs.
  • Contribute to a healthy, collaborative engineering culture by sharing knowledge, supporting colleagues, and promoting effective technical practices.
  • Develop and maintain Python-based solutions and Kubernetes operators where required to support infrastructure and automation initiatives.
  • Travel internationally for customer meetings, industry events, internal events, and project-related activities, with travel potentially reaching up to 30% of working time.
Requirements
  • Bachelor’s degree in a technical discipline or a compelling alternative professional background.
  • Experience in data engineering, MLOps, analytics, or deployment of big data solutions.
  • Practical experience with a programming language such as Python, R, or Rust, with intermediate Python skills expected.
  • Hands-on knowledge of Linux, virtualization, containers, networking, and cloud computing concepts.
  • Experience with Kubernetes and familiarity with cloud platforms such as AWS, Azure, or Google Cloud.
  • Understanding of large-scale enterprise open-source technologies, private clouds, machine learning, AI, data platforms, and analytics.
  • Experience designing, deploying, or operating technical solutions in customer-facing environments is valuable.
  • Strong business-minded problem-solving skills and the ability to translate technical challenges into practical solutions.
  • Excellent written and spoken English, with strong presentation and interpersonal communication skills.
  • Confidence to exchange feedback, contribute ideas, challenge assumptions respectfully, and collaborate with diverse stakeholders.
  • Strong curiosity, flexibility, accountability, self-motivation, and commitment to continuous learning.
  • A proactive, results-oriented approach with the ability to manage commitments and adapt quickly to new projects.
  • Passion for technology demonstrated through professional work, personal projects, or other technical initiatives.
  • Familiarity with Linux, particularly Debian or Ubuntu, is preferred.
  • Ability to work effectively within distributed, multicultural, and multinational teams.
  • Willingness and ability to travel internationally, including for events lasting up to two weeks and customer or industry meetings.
Benefits
  • Distributed work environment with twice-yearly in-person team sprints.
  • Personal learning and development budget of USD 2,000 per year.
  • Annual compensation review based on location, experience, and performance.
  • Performance-driven annual bonus or commission.
  • 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 meet colleagues in different locations.
  • Priority Pass and travel upgrades for long-haul company events.
  • Hands-on exposure to AI/ML infrastructure, MLOPs, Kubernetes, cloud platforms, data engineering, and open-source technologies.
  • Opportunities to work directly with customers across different industries and solve complex, real-world technical challenges.
  • Continuous learning opportunities across emerging technologies, distributed systems, data platforms, and AI infrastructure.
How Jobgether works

We use an AI-powered matching process to ensure your application is reviewed quickly, objectively, and fairly against the role's core requirements. Our system identifies the top-fitting candidates, and this shortlist is then shared directly with the hiring company. The final decision and next steps (interviews, assessments) are managed by their internal team.

Data Privacy Notice

By submitting your application, you acknowledge that Jobgether will process your personal data to evaluate your candidacy and share relevant information with the hiring employer. This processing is based on legitimate interest and pre-contractual measures under applicable data protection laws (including GDPR). You may exercise your rights (access, rectification, erasure, objection) at any time.

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