3 - 5 years
20 - 25 Lacs
Posted:6 hours ago|
Platform:
Work from Office
Full Time
We are seeking a highly skilled Data Scientist with strong expertise in Machine Learning, Deep Learning, and Natural Language Processing (NLP). The ideal candidate will have hands-on experience designing, developing, and deploying AI/ML models that solve real-world problems, optimize decision-making, and drive innovation.
Collect, clean, transform, and analyze large, structured and unstructured datasets using Python, SQL, and data wrangling tools.
Build and optimize machine learning models (classification, regression, clustering, recommendation systems) using algorithms such as Random Forest, XGBoost, SVM, etc.
Design and train deep neural networks using frameworks like TensorFlow or PyTorch.
Work on NLP applications such as text classification, entity recognition, sentiment analysis, summarization, and large language models (LLMs).
Fine-tune transformer-based architectures (e.g., BERT, GPT, T5, LLaMA).
Perform feature extraction, selection, and model validation using statistical and ML evaluation metrics.
Implement and deploy models into production using Docker, FastAPI, Flask, MLflow, or AWS Sagemaker.
Stay up to date with latest advancements in AI/ML and NLP; contribute to POCs, patents, or research publications.
Work closely with data engineers, product teams, and business stakeholders to translate analytical insights into strategic solutions.
Python (NumPy, Pandas, Scikit-learn, TensorFlow, PyTorch, NLTK, SpaCy, Transformers)
SQL and data querying skills
Familiarity with R (optional)
Regression, Classification, Clustering, Dimensionality Reduction, Feature Engineering
Model selection, hyperparameter tuning, cross-validation
CNNs, RNNs, LSTMs, Transformers
Generative AI (LLMs, diffusion models, embeddings, prompt engineering preferred)
Text preprocessing, tokenization, sentiment analysis, entity recognition
LLM fine-tuning, embeddings, vector databases (e.g., Pinecone, FAISS)
Git / GitHub, Jupyter, MLflow, Docker, Streamlit, FastAPI
Cloud Platforms: AWS / GCP / Azure
Versioning and CI/CD pipelines for model deployment
Bachelors or Masters degree in Computer Science, Data Science, AI/ML, Statistics, or related field.
Kezan Consulting
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