Applied AI Engineer at Enum Technology & Solution Pvt Ltd
Drenthe, Drenthe, Netherlands -
Full Time


Start Date

Immediate

Expiry Date

05 Jan, 27

Salary

22000.0

Posted On

07 Oct, 26

Experience

2 year(s) or above

Remote Job

Yes

Telecommute

Yes

Sponsor Visa

Yes

Skills

Industry

Information Technology & Services

Description

About the job


About the Role

Global Aerospace Logistics (GAL) is seeking a talented and driven AI Machine Learning Engineer to join our AI and Digital Transformation team. This role is responsible for designing, developing, deploying, and maintaining machine learning solutions that drive operational efficiency, automation, and data-driven decision making across the organization.

You will work closely with data scientists, software engineers and business stakeholders to build scalable AI applications and bring machine learning models into production environments.

  • Responsibilities:Design, build, train, and deploy machine learning models.
  • Develop scalable data pipelines and feature engineering workflows.
  • Productionize AI and machine learning solutions.
  • Deploy models through APIs, microservices, and cloud platforms.
  • Monitor, retrain, and optimize model performance.
  • Implement MLOps practices including CI/CD, model versioning, and monitoring.
  • Ensure data quality, security, and compliance requirements are met.
  • Document AI systems, models, and technical workflows.
  • Collaborate across multidisciplinary teams to deliver AI initiatives.


  • Qualifications:Bachelor's degree in Computer Science, Data Science, Artificial Intelligence, Software Engineering, or a related field.
  • Strong programming skills in Python.
  • Experience with Java, C++, or JavaScript is an advantage.


  • Experience Required:3-8 years of experience in Machine Learning, Data Science, or Software Engineering.
  • Minimum 2 years of hands-on experience deploying machine learning models into production.
  • Experience in machine learning model development, feature engineering, data pipelines, and model deployment, with knowledge of MLOps tools such as MLflow, Kubeflow, or Airflow.
  • Experience with Generative AI, LLMs, NLP, Computer Vision, or similar AI technologies is an advantage


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Responsibilities
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