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Deep Credit Risk: Machine Learning with Python
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TND 304
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Deep Credit Risk - Machine Learning with Python aims at starters and pros alike to enable you to engineer and select features, predict defaults and build models for credit-correlation, risk analytics and more.
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What Stands Out
Product Details
- Suitable for beginners and experienced professionals
- Covers understanding of key banking features and implications of COVID-19
- Includes innovative sampling techniques and various machine learning models
- Provides over 1,500 lines of Python code for practical implementation
- Addresses building credit portfolio correlation models for VaR and Expected Shortfall
- Aims to enable prediction of defaults, payoffs, loss rates, exposures, and downturn outcomes
| Publisher | Independently published |
| Publication date | June 24, 2020 |
| Language | English |
| Print length | 473 pages |
| ISBN-13 | 979-8617590199 |
| Item Weight | 1.76 pounds (800 grams) |
| Dimensions | 7.5 x 1.07 x 9.25 inches (19.1 x 2.7 x 23.5 cm) |
Who Should Buy?
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Data Scientists
Ideal for data scientists looking to expand their knowledge in machine learning applications within credit risk management.
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Finance Professionals
Helps finance professionals understand and apply machine learning techniques to assess credit risk effectively.
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Students and Researchers
Valuable resource for students and researchers interested in applying machine learning concepts in financial services.
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Beginners
Not suitable for beginners with no prior knowledge of programming or machine learning concepts.
Product Description
Deep Credit Risk: Machine Learning with Python
About This Item
Are you looking for a comprehensive guide to utilizing machine learning in the field of credit risk analysis? Look no further than "Deep Credit Risk: Machine Learning with Python." This paperback, published on June 24, 2020, is a valuable resource for anyone interested in understanding and implementing machine learning algorithms for credit risk assessment in the e-commerce industry. Whether you are a data scientist, an analyst, or a business owner, this book will provide you with the tools you need to optimize your e-commerce operations. With the rise of online transactions, credit risk management has become a crucial aspect of running a successful e-commerce business. By harnessing the power of machine learning, you can enhance your credit risk assessment practices, identify fraud patterns, and make data-driven decisions to optimize your business processes. "Deep Credit Risk: Machine Learning with Python" offers a practical approach to integrating machine learning techniques into your e-commerce analytics toolkit.
The book will guide you through the process of building predictive models for credit risk, detecting and preventing e-commerce fraud, and optimizing various aspects of your e-commerce operations. Using Python, one of the most popular programming languages for data analysis, you will learn how to leverage Python libraries for e-commerce analytics and effectively analyze and visualize your e-commerce data. This will enable you to gain valuable insights into customer behavior, inform your credit risk assessment strategies, and improve your decision-making processes. Whether you are interested in e-commerce inventory management, personalized marketing, pricing optimization, website optimization, or supply chain management, "Deep Credit Risk: Machine Learning with Python" covers a wide range of topics relevant to e-commerce businesses. With practical examples and real-world case studies, this book offers actionable insights that you can implement immediately. Don't risk missing out on this valuable resource.
Order "Deep Credit Risk: Machine Learning with Python" today and discover how you can harness the power of machine learning to enhance your credit risk management strategies and optimize your e-commerce operations. Take your e-commerce business to the next level with the power of data-driven decision-making.
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Banks & Banking Editorial Review
Deep Credit Risk: Machine Learning with Python is an insightful publication independently released in June 2020, providing readers with a comprehensive overview of utilizing machine learning techniques in the field of credit risk management. With a substantial print length of 473 pages, this book delves into various methodologies and practices essential for analyzing credit risk data effectively. The thorough content is ideal for both practitioners and researchers looking to enhance their understanding of predictive modeling in finance. Additionally, the book's thoughtful organization makes it accessible to readers with varying levels of expertise in Python and machine learning, ensuring that valuable insights can be gained regardless of one's background.
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Pros
- Thorough exploration of machine learning in finance
- Suitable for both beginners and experts
- Well-structured chapters for easy understanding
- Comprehensive coverage of credit risk analysis
- Enhanced insights into predictive modeling
Cons
- Some readers may find it lengthy for quick reference
Product Price History
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TND 304
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Features & Benefits
- Use Python to predict defaults, payoffs, loss rates and exposures
- Learn how to apply innovative sampling techniques for model training and validation
- Understand the implications of COVID-19 on the credit industry
- Build credit portfolio correlation models for VaR and Expected Shortfall
- Do unsupervised Clustering, Principal Components and Bayesian Techniques
- Run over 1,500 lines of pandas, statsmodels and scikit-learn Python code
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