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Machine Learning Consultant

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5 - 10 years

Bengaluru

Posted: 12/06/2026

Job Description

Job Description

Essential Functions:

  • Proficient in exploratory data analysis (EDA) using Pythons scientific libraries including NumPy, Pandas, Matplotlib, Seaborn, and scikitlearn.
  • Strong development experience in Python.
  • Handson experience building, training, testing, validating, and productizing machine learning models for highperformance use cases.
  • Solid understanding of core machine learning concepts, including feature engineering, model evaluation, and optimization.
  • Experience implementing MLOps best practices, including model versioning, monitoring, and CI/CD pipelines for ML models.
  • Handson experience with AWS SageMaker for building, training, tuning, and deploying ML models.
  • Handson experience with to AWS services for machine learning workloads, such as S3, EC2, ECR, EKS, Lambda, CloudWatch.
  • Strong understanding of model explainability frameworks such as SHAP, and the ability to interpret and explain model behavior.
  • Experience debugging and analyzing false positive and false negative cases, including supporting client or production issues.
  • Handson experience and solid understanding of deep learning models, with exposure to frameworks such as TensorFlow, PyTorch, or Keras.
  • Strong problemsolving skills with the ability to move beyond tasks and propose improved or alternative solutions.
  • Experience with ML lifecycle management and experimentation frameworks such as MLflow


Qualifications


8+ yrs. work experience with a Bachelors Degree or 6+ years of work experience with a Master's or Advanced Degree in an analytical field such as computer science, statistics, finance, economics or relevant area. Additional Skills (Plus) Exposure to model serving and inference engines such as TensorFlow Serving, Triton Inference Server, or similar technologies. Experience building and maintaining Sparkbased data and feature pipelines to support ML training and inference workflows. Familiarity with big data platforms and storage systems such as Hadoop, EMR, and NoSQL databases.

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