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Machine Learning Sr. Manager

8.00 to 12.00 Years   Chennai,Bangalore   26 Feb, 2025
Job LocationChennai,Bangalore
EducationNot Mentioned
SalaryRs 28 - 40 Lakh/Yr
IndustryIT Services & Consulting
Functional AreaApplication Programming / MaintenanceGeneral / Other Software
EmploymentTypeFull-time

Job Description

    Role : Machine Learning Engineer Sr. ManagerExperience : 8-12 YrsLocation : Bangalore or Chennai# Purpose :We are looking for a highly skilled and motivated Machine Learning Engineer to join our team to design, develop, and deploy scalable machine learning solutions. In this role, you will work on building robust ML pipelines, optimizing large-scale data processing, and implementing state-of-the-art MLOps frameworks on cloud platforms like Azure and Snowflake.# Highlights :
    • Design and deploy end-to-end machine learning pipelines on cloud platforms (Azure, Snowflake).
    • Build efficient ETL pipelines to support data preparation, model training, and evaluation on Snowflake and Azure.
    • Scale machine learning infrastructure to handle large datasets
    • Ensure secure ML deployments with Governance,Risk and Compliance
    • Experience building scalable ML systems
    # Roles and Responsibilities :
    • This is a global role working across diverse business areas, brand and geographies, providing business outcomes and enabling transformative impact across the global landscape.
    • Design and deploy end-to-end machine learning pipelines on cloud platforms (Azure, Snowflake) to deliver scalable, production-ready solutions.
    • Build efficient ETL pipelines to support data preparation, model training, and evaluation on modern platforms like Snowflake.
    • Scale machine learning infrastructure to handle large datasets and enable real-time processing for critical applications.
    • Implement MLOps frameworks to automate model deployment, monitoring, and retraining, ensuring seamless integration of ML solutions into business workflows.
    • Monitor and measure model drift (concept, data, and performance drift) to maintain ongoing model effectiveness.
    • Deploy machine learning models as REST APIs using frameworks such as FastAPI, Bento ML, or Torch Serve.
    • Establish robust CI/CD pipelines for machine learning workflows using tools like Git and Jenkins, enabling efficient and repeatable deployments.
    • Ensure secure ML deployments, addressing risks such as adversarial attacks and maintaining model integrity.
    • Build modular and reusable ML packages using object-oriented programming principles, promoting code reusability and efficiency.
    • Develop clean, efficient, and production-ready code by translating complex business logic into software solutions.
    • Continuously explore and evaluate MLOps tools such as MLFlow and Weights & Biases, integrating best practices into the development process.
    • Foster cross-functional collaboration by partnering with product teams, data engineers, and other stakeholders to align ML solutions with business objectives.
    • Lead data labeling and preprocessing tasks to prepare high-quality datasets for training and evaluation.
    • Stay updated on advancements in machine learning, cloud platforms, and secure deployment strategies to drive innovation in ML infrastructure.
    # Experience :
    • Masters degree in Computer Science, Computational Sciences, Data Science, Machine Learning, Statistics , Mathematics any quantitative field
    • Expertise with object oriented programming (Python, C)
    • Strong expertise in Python libraries like NumPy, Pandas, PyTorch, TensorFlow, and Scikit-learn
    • Proven experience in designing and deploying ML systems on cloud platforms (AWS, GCP, or Azure).
    • Hands-on experience with MLOps frameworks, model deployment pipelines, and model monitoring tools.
    • Track record of scaling machine learning solutions from prototype to production.
    • Experience building scalable ML systems in fast-paced, collaborative environments.
    • Working knowledge of adversarial machine learning techniques and their mitigation
    • Agile and Waterfall methodologies.
    • Personally invested in continuous improvement and innovation.
    • Motivated, self-directed individual that works well with minimal supervision.

Keyskills :
pythonmachine learningnumpyscikit-learnetlpandamlopsmachine learning modelmachine learning pipeline

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