Machine Learning Engineer MMH260714-11
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
Duties and Responsibilities
KEY ACCOUNTABILITIES/KRAs/KPIs
As an applicant, please verify the legitimacy of this job advert on our company career page.
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
- Strong proficiency in Python and Machine Learning frameworks such as Scikitlearn, TensorFlow, PyTorch, or Keras.
- Experience in data preprocessing, feature engineering, model evaluation, and
- Exposure to cloud-based ML solutions (Azure, AWS, or GCP), MLOps practices,
Duties and Responsibilities
KEY ACCOUNTABILITIES/KRAs/KPIs
- Design, build, train, validate, and deploy machine learning models to address
- Collaborate with business stakeholders to understand requirements and translate
- Perform data collection, cleansing, preprocessing, and feature engineering
- Evaluate model performance using appropriate metrics and optimize models for
- Develop and maintain data pipelines to support machine learning workflows.
- Implement MLOps best practices for model deployment, version control,
- Work closely with engineering teams to integrate ML solutions into production
- Conduct exploratory data analysis and derive meaningful insights from large
- Prepare technical documentation, model reports, and implementation guides.
- Ensure adherence to security, governance, and compliance standards in AI
- Support production issues and continuously improve deployed machine learning
- Participate in sprint planning, code reviews, and technical discussions.
- Develop and optimize APIs and services for serving machine learning models in
- Monitor model performance, drift, and data quality, ensuring timely retraining
- Build scalable and reusable ML solutions that can be leveraged across multiple
- Conduct proof of concepts (POCs) and feasibility assessments for new AI/ML
As an applicant, please verify the legitimacy of this job advert on our company career page.
- 346021306
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