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Role Summary
Senior Data Scientist focused on fraud strategy analytics and operational monitoring across a consumer lending portfolio. You will turn fraud data, scorecard performance, and decisioning outcomes into actionable policy, rule, and reporting recommendations — partnering closely with fraud operations, product, credit/risk, data engineering, and external vendors. Day-to-day responsibilities include monitoring, trend detection, third-party signal assessment, and cross-functional execution.
Key Responsibilities
Qualifications
Preferred Qualifications
Job ID: 148884443
Skills:
Matplotlib, Machine Learning, Tableau, Sql, Nosql, Tensorflow, Pytorch, Data Visualization, Seaborn, Python, T5, Generative AI, Hugging Face Transformers, GPT, R, Statistics, BERT
Skills:
Machine Learning, Tableau, Tensorflow, Numpy, Seaborn, Pytorch, Python, AWS, Power Bi, Clustering, Sql, Deep Learning, Gcp, Pandas, Matplotlib, Data Visualization, Azure, Classification, Forecasting, Scikit-learn, plotly, Regression, Ensemble Methods, oci
Skills:
Pyspark, Data Warehousing, Tableau, Tensorflow, Deep Learning, Nosql, Nlp, Pytorch, Data Visualisation, Python, Machine Learning, Power Bi, Google Cloud, Sql, D3, Qlik, Spark, Clustering, scikit-learn, reinforcement learning, Dash, R, Shiny, statistical learning, MLlib, H2O, tree-based models, Regression
Skills:
unstructured data , tokenization , Ml, Sentiment Analysis, Pyspark, Datascience, Sql, Nltk, Nlp, Spark, Databricks, Summarization, Python, Generative AI, topic modeling, text generation, Ai, Fmcg, Llm, Gen AI, rag, NER
Skills:
Logistic Regression, Spark SQL, Machine Learning, Data Extraction, Sql, Neural Network, Hive, Shell Script, Python, AWS EMR, HDFS, Gradient Boosting, Building Reusable Data Pipelines
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