Data Scientist
Il y a 6 heures
Arrondissement of BrusselsCapital, Brussels, Belgique
Yechte Consulting Ltd
Temps plein
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Job Responsibilities
- Deploy machine learning models, specifically using AWS solutions.
- Monitor and maintain the performance and scalability of deployed models, in both cloud and on-premise environments.
- Implement best practices for version control, model tracking, and model lifecycle management.
- Design and manage scalable, reliable, and secure cloud and on-premise infrastructure for machine learning projects.
- Ensure seamless integration between different infrastructure components.
- Implement and maintain CI/CD pipelines for machine learning projects.
- Adopt sound Infrastructure as Code (IaC) principles to ensure consistency and repeatability, enhancing data-driven workflows.
- Work closely with data scientists, data engineers, and other stakeholders to understand project requirements and deliver optimal solutions.
- Stay up-to-date with the latest developments in machine learning, cloud technologies, and DevOps and MLOps practices.
- Identify and implement improvements to existing workflows and systems, including FinOps.
- Participate in incident response activities, especially those related to data integrity and service availability, to help teams dig into root cause analysis.
- Help troubleshoot and resolve performance or data quality-related issues promptly.
Must Have Skills
- Bachelor’s or Master’s degree in Computer Science, Information Technology, Data Science, or a related field.
- Proven experience as a Data Scientist, Machine Learning Engineer, Data Engineer, or in a similar role.
- Experience conducting both business and technical analysis.
- Strong understanding of system architecture, with the ability to translate business requirements into scalable technical designs and solutions.
- Experience performing data analysis using Python through scripting and Jupyter Notebooks.
- Strong understanding of MLOps principles, including model deployment, monitoring, and lifecycle management.
- Hands-on experience with both cloud-based and on-premises infrastructure.
- Proficiency in Python and its data science ecosystem.
- Experience with DevOps practices and tools, including:
- CI/CD pipelines.
- Containerization using Docker.
- Orchestration platforms such as Kubernetes or Amazon ECS.
- Strong knowledge of SQL and familiarity with NoSQL databases.
- Excellent analytical and problem-solving skills, with the ability to think critically and creatively.
- Strong communication and stakeholder-management skills, with the ability to collaborate effectively across technical and business teams.
- Ability to work independently, prioritize effectively, and manage multiple tasks in a fast-paced environment.
- Professional working proficiency in Dutch and English.
Nice to have
- Experience with Amazon SageMaker and other AWS services.
- Knowledge of modern data-engineering practices and frameworks, such as dbt and/or Dagster.
- Familiarity with additional programming languages, such as R, Java, or C++.
- Experience with Infrastructure as Code tools and practices.
- Knowledge of model tracking, model registries, automated retraining, and model-monitoring solutions.
- Experience with FinOps, cloud-cost optimization, and performance optimization for machine learning workloads.
- AWS MLOps practices commonly include model training, deployment, monitoring, versioning, and lifecycle management at scale.
What's great in the job? Great team of smart people, in a friendly and open culture Expand your knowledge of various business industriesCreate content that will help our users on a daily basis Real responsibilities and challenges in a fast evolving company