MLOps Engineer

Faktion | AI Solutions & Advisory

Antwerpen

Hybride

EUR 70 000 - 90 000

Plein temps

14 jours+

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Avantages offerts par ce poste

Company car and fuel card
Comprehensive hospitalization and group insurance
Top-tier laptop and smartphone
Innovation budget for open-source projects
Virtual team-building activities

Résumé du poste

Faktion | AI Solutions & Advisory is seeking an experienced MLOps Engineer to create and deploy scalable AI solutions for enterprise clients. In this role, you will lead the formation of the MLOps team and design the machine learning infrastructure essential for production deployment.

The ideal candidate will have strong Python skills and experience with CI/CD pipelines, cloud computing, and machine learning systems. Flexible working arrangements and a rewarding salary package, including a company car and insurance, are offered.

Qualifications

  • Experience in setting up CI/CD pipelines with tools like Azure DevOps or GitHub Actions.
  • Excellent written and verbal communication skills in native English or Dutch.
  • Experience with message brokers like MS Service Bus or Kafka.
  • Strong software engineering skills, particularly in Python.
  • Ability to translate business needs to technical requirements.

Responsabilités

  • Design and build machine learning pipelines and cloud infrastructure.
  • Turn offline models into scalable machine learning production systems.
  • Develop and deploy scalable tools and services for clients.
  • Implement security best practices to safeguard data and model outputs.
  • Investigate and resolve issues related to model performance or data pipelines.

Connaissances

CI/CD pipeline setup
Message brokers (Kafka, RabbitMQ)
Fluency in Python
Cloud computing experience
API setup with serverless functions
Machine learning model deployment
Container development (Docker, Kubernetes)
Infrastructure setup using Terraform
Technical requirement translation

Outils

Azure DevOps
GitHub Actions
Python
Terraform
Kubernetes

Description du poste

Creating a robust machine learning infrastructure for production use is a significant hurdle for many of our large‑scale clients transitioning towards AI‑centric operations. This role presents a unique opportunity for a seasoned MLOps engineer or server‑side developer to deepen their expertise in this emerging field and spearhead the formation of our inaugural MLOps team, sharing their knowledge across our organization. In the role of MLOps Engineer, you’ll be at the forefront of deploying cutting‑edge AI solutions for Faktion’s enterprise clients. Consider a scenario where Faktion’s data scientists have developed a groundbreaking system that can automatically interpret and process thousands of images for a major manufacturing plant. It functions flawlessly in a test environment, but the real challenge lies in its deployment to a production setting. How will this system be scaled to handle millions of images? What’s the best approach for users to interact with this system? What tools or platforms should be utilized for ongoing monitoring? As an MLOps Engineer at Faktion, you will navigate these questions and architect the necessary solutions.

Some key responsibilities
  • Design and build the machine learning pipelines and cloud infrastructure to support our machine learning systems at scale
  • Take offline models data scientists build and turn them into a real machine learning production system
  • Develop and deploy scalable tools and services for our clients to handle machine learning training and inference
  • Identify and evaluate new technologies to improve performance, maintainability, and reliability of our clients’ machine learning systems
  • Apply software engineering rigor and best practices to machine learning, including CI/CD, automation, etc.
  • Implement security best practices to safeguard sensitive data and model outputs, and support model development, with an emphasis on auditability, versioning, and data security
  • Investigate and resolve issues related to model performance, data pipelines, or infrastructure
  • Excellent written and verbal communication skills in native‑English or native‑Dutch (French is a plus).
  • Experience in setting up CI/CD pipelines (Azure DevOps, GitHub Actions, … )
  • Experience with message brokers or message services like MS Service Bus, Kafka, RabbitMQ or similar solutions
  • Strong software engineering skills in complex, multi‑language systems, with an outspoken fluency in Python
  • Experience working with cloud computing and database systems
  • Ability to set up APIs using serverless functions like Azure Functions
  • Experience developing and maintaining ML systems built with open source tools
  • Experience developing with containers and Kubernetes in cloud computing environments
  • Experience with setting up Infrastructure with tools like Terraform or Biceps
  • Ability to translate business needs to technical requirements
Following experiences are a plus
  • Proven track record of developing and deploying scalable machine learning models.
  • Strong communication and teamwork abilities.
  • Experience in one of our focus domains: GenAI, Data Quality, Retail, Manufacturing, Finance
  • Strong understanding of software testing, benchmarking, and continuous integration
  • Exposure to machine learning methodology and best practices
  • Exposure to deep learning approaches and modeling frameworks (PyTorch, Tensorflow, Keras, etc.)
We offer
  • A rewarding salary package that includes additional perks like a company car and fuel card or a mobility budget, comprehensive hospitalization and group insurance, along with a top‑tier laptop and smartphone.
  • Benefit from a company culture that stimulates both individual and team development, fostering your professional growth.
  • Utilize your innovation budget for engaging in exciting, educational, and challenging open‑source projects within your guild.
  • Participate in (virtual) team‑building activities and gatherings, a great opportunity to unwind and engage with our vibrant team initiatives.
  • A flexible hybrid working‑policy to choose where, how, and when you want to work.
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