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Data Scientist - Fraud India, Bangalore Jobs (On-site work)

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Data Scientist
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Join Uber's Core Analytics & Science Team in Bangalore as a Data Scientist. You will refine product hypotheses, design experiments, and define key metrics using advanced SQL and Python. Leverage your 6+ years of analytical experience to drive insights for global Mobility and Delivery products. Th...
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India , Bangalore
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Uber
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Senior Data Scientist
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Join Microsoft's Advertising Monetize team in Bangalore as a Senior Data Scientist. Leverage 6+ years of experience in data analytics, machine learning, and Python/R to drive product insights and revenue growth. You will analyze KPIs, improve reporting, and identify system opportunities in comput...
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India , Bangalore
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Microsoft Corporation
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Data Scientist, Data Science
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India , Bangalore
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Uber
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Data Scientist
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Join Microsoft Advertising in Bangalore as a Data Scientist. Drive product analytics and revenue growth using big data from diverse sources. Apply your 6+ years of experience in ML, Python/R, and quantitative analysis to uncover insights and improve system performance. This role blends software d...
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India , Bangalore
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Microsoft Corporation
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Explore Data Scientist - Fraud jobs and discover a critical and dynamic career at the intersection of data science, machine learning, and financial security. Data Scientists specializing in fraud are the frontline defenders for organizations, leveraging advanced analytics to detect, prevent, and mitigate fraudulent activities in real-time. This profession is essential across industries like banking, fintech, e-commerce, insurance, and digital payments, where protecting assets and customer trust is paramount. Professionals in these roles apply their expertise to outsmart increasingly sophisticated fraudsters, making this field both challenging and highly impactful. A Data Scientist in fraud typically engages in a full lifecycle of analytical work. Core responsibilities involve ingesting and analyzing massive volumes of transactional and behavioral data to identify anomalous patterns indicative of fraud. This includes developing, training, and deploying machine learning models for classification, anomaly detection, and network analysis. Common tasks are feature engineering from complex datasets, building real-time scoring systems, and continuously monitoring model performance to reduce false positives and adapt to emerging fraud tactics. These scientists also collaborate closely with fraud analysts, engineers, and business stakeholders to translate model insights into actionable rules and operational procedures, ensuring a robust defense system. Typical skills and requirements for these positions are both technical and strategic. A strong educational background in data science, statistics, computer science, or a related quantitative field is standard, with many roles preferring advanced degrees. Proficiency in Python or R is essential, alongside deep experience with ML libraries like scikit-learn, TensorFlow, PyTorch, and XGBoost. Expertise in SQL for data manipulation and a solid understanding of big data technologies (Spark, Hadoop) and cloud platforms (AWS, GCP, Azure) for deploying scalable solutions are commonly required. Beyond technical prowess, successful candidates possess a keen analytical mindset, a deep understanding of fraud typologies, and the ability to communicate complex findings to non-technical audiences. The landscape of Data Scientist - Fraud jobs is evolving rapidly, offering professionals the chance to work on cutting-edge problems in AI and machine learning while providing tangible value by safeguarding financial systems and consumer data.

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