Empleos

Machine Learning Engineer MMH260714-11

Posted just now
Momentum Services
Role Purpose

The Machine Learning Engineer is responsible for designing, developing, deploying,

and maintaining machine learning models and AI-driven solutions that solve complex

business problems. The role involves working closely with data scientists, software

engineers, and business stakeholders to transform data into scalable and productionready intelligent systems.

Requirements

  • 5+ yrs of hands-on experience in developing, training, and deploying Machine

Learning models in production environments.

  • Strong proficiency in Python and Machine Learning frameworks such as Scikitlearn, TensorFlow, PyTorch, or Keras.
  • Experience in data preprocessing, feature engineering, model evaluation, and

optimization using structured and unstructured datasets.

  • Exposure to cloud-based ML solutions (Azure, AWS, or GCP), MLOps practices,

CI/CD pipelines, and model monitoring.

Duties and Responsibilities

KEY ACCOUNTABILITIES/KRAs/KPIs

  • Design, build, train, validate, and deploy machine learning models to address

business challenges.

  • Collaborate with business stakeholders to understand requirements and translate

them into AI/ML solutions.

  • Perform data collection, cleansing, preprocessing, and feature engineering

activities.

  • Evaluate model performance using appropriate metrics and optimize models for

accuracy and scalability.

  • Develop and maintain data pipelines to support machine learning workflows.
  • Implement MLOps best practices for model deployment, version control,

monitoring, and retraining.

  • Work closely with engineering teams to integrate ML solutions into production

systems.

  • Conduct exploratory data analysis and derive meaningful insights from large

datasets.

  • Prepare technical documentation, model reports, and implementation guides.
  • Ensure adherence to security, governance, and compliance standards in AI

implementations.

  • Support production issues and continuously improve deployed machine learning

solutions.

  • Participate in sprint planning, code reviews, and technical discussions.
  • Develop and optimize APIs and services for serving machine learning models in

production environments.

  • Monitor model performance, drift, and data quality, ensuring timely retraining

and enhancements.

  • Build scalable and reusable ML solutions that can be leveraged across multiple

business use cases.

  • Conduct proof of concepts (POCs) and feasibility assessments for new AI/ML

initiatives.

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