Hi,
We are looking for Artifical interligence professional, please find details below if interested kindly share your CV.
Exp: 13+yrs
Location: Mumbai/Hyderabad
Education: BE/BTEch/ME/MTech
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Expertise in supervised, unsupervised, machine learning, deep learning, reinforcement learning, statistics techniques.
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Proficiency in Python, PyTorch, TensorFlow.
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Good to have knowledge of Bayesian inference, probability distribution, hypothesis testing, A/B testing, and time series forecasting.
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Hands-on experience with feature engineering and hyperparameter tuning.
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Experience with MLflow, Weights & Biases, DVC (Data Version Control).
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Ability to track model performance across multiple experiments and datasets.
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End-to-end ML lifecycle management from Data ingestion, preprocessing, feature engineering, model training, deployment, and monitoring.
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Expertise in CI/CD for ML, containerization (Docker, Kubernetes), and orchestration (Kubeflow).
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Good to have experience in automating data labelling and feature stores (Feast).
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Good to have data processing experience in Spark, Flink, Druid, Nifi.
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Good to have real-time data streaming in Kafka and other messaging systems
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Designing and optimizing data pipelines for structured data.
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Good to have hands-on experience with Pyspark.
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Strong SQL skills for data extraction, transformation, and query optimization.
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Atleast one database experience such as NOSQL database.
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Implementing parallel and distributed ML techniques for large-scale systems.
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Good to have knowledge of model explainability (SHAP, LIME), bias mitigation, and adversarial robustness.
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Experience in model drift monitoring.
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Good to have CUDA for GPU acceleration.
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Good to have choosing between CPU/GPU for different ML workloads (batch inference on CPU, training on GPU).
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Good to have scaling deep learning models on multi-GPU.
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Strong presentation skills, including data storytelling, visualization (Matplotlib, Seaborn, Superset), and report writing.
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Experience in mentoring data scientists, research associates, and data engineers.
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Contributions to research papers, patents, or open-source projects.