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AI in Finance

This course is designed to equip finance professionals with the practical tools and techniques to integrate AI into their daily workflows without needing deep data science expertise. The focus is on hands-on learning, utilizing AutoML, explainability tools, and generative AI to solve real-world financial problems.

Participants will work on four practical challenges, covering AI applications in trading strategies, risk management, and AI copilots for automated financial insights.

By the end of the course, attendees will be able to immediately apply AI-driven techniques in their workplace, leveraging AI models for decision-making, automation, and analysis.  

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  • Date:
  • Please contact us
  • Venue:
  • Manhattan - New York
  • Fee:

This course is also available in London Time Zone and Singapore Time Zone

Who The Course is For
  • Finance professionals (traders, analysts, risk managers, portfolio managers) looking to leverage AI without becoming data scientists
  • Professionals working in asset management, banking, and corporate finance who want to automate financial tasks, improve efficiency, and enhance decision-making
  • Teams interested in AutoML, explainability, and AI-driven analytics to optimise their existing processes
  • Anyone who wants to apply AI tools right away without needing deep coding or mathematical knowledge
Learning Objectives
  • Build a complete bank capital stress test model, encompassing both econometric and fundamental models of retail and corporate credit risk, market risk and operational risk
  • Learn how to apply the model for any of Internal Capital Adequacy Assessment Process (ICAAP), external supervisor-driven stress tests or investor-driven stress tests
  • Review the various approaches taken by different banks and supervisors in their capital stress testing, from a range of European, US and Asian banks
Prior Knowledge
  • Basic Python knowledge (e.g., understanding variables, loops, functions, and basic data manipulation with Pandas)
  • No prior machine learning or AI experience is required – the course is structured to introduce and apply AI concepts in a user-friendly manner
  • Familiarity with Excel, financial data, and basic statistics is helpful but not mandatory

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