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Cover of Hands-On Artificial Intelligence for Banking

Hands-On Artificial Intelligence for Banking

Written by Subhash Shah,Jeffrey Ng

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232 pages, about 5 hours of reading

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About this book

Delve into the world of real-world financial applications using deep learning, artificial intelligence, and production-grade data feeds and technology with Python Key FeaturesUnderstand how to obtain financial data via Quandl or internal systemsAutomate commercial banking using artificial intelligence and Python programsImplement various artificial intelligence models to make personal banking easyBook Description Remodeling your outlook on banking begins with keeping up to date with the latest and most effective approaches, such as artificial intelligence (AI). Hands-On Artificial Intelligence for Banking is a practical guide that will help you advance in your career in the banking domain. The book will demonstrate AI implementation to make your banking services smoother, more cost-efficient, and accessible to clients, focusing on both the client- and server-side uses of AI. You’ll begin by understanding the importance of artificial intelligence, while also gaining insights into the recent AI revolution in the banking industry. Next, you’ll get hands-on machine learning experience, exploring how to use time series analysis and reinforcement learning to automate client procurements and banking and finance decisions. After this, you’ll progress to learning about mechanizing capital market decisions, using automated portfolio management systems and predicting the future of investment banking. In addition to this, you’ll explore concepts such as building personal wealth advisors and mass customization of client lifetime wealth. Finally, you’ll get to grips with some real-world AI considerations in the field of banking. By the end of this book, you’ll be equipped with the skills you need to navigate the finance domain by leveraging the power of AI. What you will learnAutomate commercial bank pricing with reinforcement learningPerform technical analysis using convolutional layers in KerasUse natural language processing (NLP) for predicting market responses and visualizing them using graph databasesDeploy a robot advisor to manage your personal finances via Open Bank APISense market needs using sentiment analysis for algorithmic marketingExplore AI adoption in banking using practical examplesUnderstand how to obtain financial data from commercial, open, and internal sourcesWho this book is for This is one of the most useful artificial intelligence books for machine learning engineers, data engineers, and data scientists working in the finance industry who are looking to implement AI in their business applications. The book will also help entrepreneurs, venture capitalists, investment bankers, and wealth managers who want to understand the importance of AI in finance and banking and how it can help them solve different problems related to these domains. Prior experience in the financial markets or banking domain, and working knowledge of the Python programming language are a must.

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Reading guide

Themes, characters and key ideas in Hands-On Artificial Intelligence for Banking, written by Chaptra AI.

  • about 15 hours
  • advanced
  • informative
  • practical
  • technical

This practical guide, "Hands-On Artificial Intelligence for Banking," by Subhash Shah and Jeffrey Ng, equips finance professionals with the knowledge and tools to implement AI and deep learning solutions within the banking sector. It covers a broad spectrum of applications, from automating commercial and personal banking operations and managing capital markets to building robot advisors and leveraging NLP for market analysis. Emphasizing real-world data feeds and Python, the book aims to enhance banking services, reduce costs, and provide a competitive edge through AI adoption. It serves as a comprehensive resource for data scientists, engineers, and finance professionals seeking to integrate cutting-edge AI techniques into financial applications.

Remodeling your outlook on banking begins with keeping up to date with the latest and most effective approaches, such as artificial intelligence (AI).

Key themes

AI in Banking Transformation
This theme explores how Artificial Intelligence is fundamentally reshaping the banking industry, moving beyond traditional methods to enable more efficient, cost-effective, and accessible services. It covers the strategic imperative for banks to adopt AI for competitive advantage, innovation, and meeting evolving client expectations.
Practical AI Implementation & Automation
This core concept focuses on the hands-on application and deployment of AI models to automate various banking functions. It emphasizes the practical steps and technical skills required to build, implement, and manage AI solutions for tasks ranging from commercial bank pricing to automated portfolio management.
Data Acquisition and Management
This theme highlights the critical importance of obtaining, processing, and utilizing diverse financial data feeds for effective AI implementation. It covers strategies for sourcing data from commercial providers (like Quandl), open APIs, and internal banking systems, emphasizing the foundational role of data in training robust AI models.

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What are the most significant ethical considerations when deploying AI models for financial decision-making, particularly concerning bias and fairness?

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