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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:
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
Skills:
prophet , Tensorflow, Pytorch, Etl Tools, Python, Hadoop, Neural Nets, Hive, Arima, Spark, Keras, Clustering, heuristic LP, Simulation, anomaly detection, machine learning techniques, R, Market Intelligence, stochastic models, Map Reduce, GA, SQL databases, Gurobi, time series forecasting, exponential smoothing, o9 platform, ensemble learning, time series optimizations, Regression, feature engineering
Skills:
Tensorflow, Machine Learning, Pytorch, Natural Language Processing, Apache Spark, Keras, Python, Sql, Hugging Face
Skills:
Machine Learning, Sql, Deep Learning, MLops, Spark, Python, Generative AI, Ai, Ray, Sagemaker, Dask, Kubeflow
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