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Deep Credit Risk: Machine Learning with Python
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CZK 2230
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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
Detaily produktu
- 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) |
| Country of Origin | This item will be imported from US |
| Date First Available | April 02, 2021 |
| What is in the box | Deep Credit Risk: Machine... For more details, please check description/product details |
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.
POPIS PRODUKTU
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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CZK 2230
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Služby a výhody
- 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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