AI/ML Engineer (7+)
hpe | 33 days ago | Bangalore

Key Responsibilities

  • Model Development & Deployment
    • Design, train, and optimize ML/DL models for classification, prediction, NLP, computer vision, and recommendation systems.
    • Deploy ML models into production using MLOps frameworks (Kubeflow, MLflow, SageMaker, Vertex AI, Azure ML).
    • Develop reusable ML components for scalability and automation.
  • Data Engineering for ML
    • Work with large-scale datasets for feature extraction, cleaning, and transformation.
    • Implement data pipelines for real-time and batch ML workloads.
    • Ensure data quality, consistency, and lineage across pipelines.
  • MLOps & Automation
    • Build end-to-end automated ML lifecycle pipelines (training, testing, deployment, monitoring).
    • Integrate CI/CD practices into ML model deployment.
    • Implement drift detection, continuous learning, and retraining strategies.
  • Performance & Optimization
    • Optimize algorithms for speed, accuracy, and cost efficiency.
    • Leverage GPU/TPU environments for high-performance training.
    • Benchmark models and fine-tune hyperparameters for business KPIs.
  • Security & Governance
    • Ensure compliance with ethical AI practices and regulatory frameworks.
    • Implement security measures for ML models (adversarial robustness, secure APIs).
    • Collaborate with cybersecurity and governance teams for responsible AI adoption.
  • Collaboration & Innovation
    • Work with data scientists, data engineers, and business analysts to align AI solutions with business outcomes.
    • Mentor junior engineers and contribute to best-practice frameworks.
    • Stay updated on emerging AI/ML research, tools, and technologies.

 

What you need to bring:

Required Skills & Experience

  • 7+ years in AI/ML engineering, data science, or applied machine learning.
  • Proficiency in Python, R, or Scala with ML libraries/frameworks (TensorFlow, PyTorch, Scikit-learn, Keras, XGBoost).
  • Strong background in statistics, data mining, and algorithm design.
  • Hands-on experience with cloud AI/ML platforms (AWS SageMaker, Azure ML, GCP Vertex AI).
  • Familiarity with MLOps tools (Kubeflow, MLflow, Airflow, Docker, Kubernetes).
  • Strong knowledge of SQL/NoSQL databases and data lakes.
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