Course Overview

Artificial Intelligence (AI) has been widely adopted across diverse industries, driving transformative advancements throughout supply and value chains. Its applications span from recommender systems and smart assistants to chatbots, classifiers, and predictive engines. Today, recommender systems effectively deliver the right product to the right customer at the optimal time, while smart assistants have become integral to daily life. Similarly, chatbots are revolutionizing customer service, classifiers are detecting fraudulent activities, and predictive engines are anticipating credit defaults with remarkable accuracy.

In parallel, the rapid growth of social media usage has heightened the need for organizations to analyze trends and customer sentiments. Natural Language Processing (NLP) offers powerful solutions in this domain, while data visualization tools play a critical role in extracting meaningful insights from vast organizational datasets.

This training program equips participants with the knowledge and skills to harness AI technologies within the banking sector. Participants will explore how recommender systems, chatbots, classifiers, and predictive engines can create substantial value for financial institutions.

Key areas of focus in the Artificial Intelligence in Banking training course include:

Data analysis and visualization

Customer clustering and segmentation

Machine learning for credit default prediction and fraud detection

Natural Language Processing (NLP)

Chatbots and smart assistants

Course Objectives

By the end of this Artificial Intelligence in Banking training course, participants will learn to:

Develop a credit default predictor
Develop a fraud detection system
Develop a recommender system
Develop a customer segmentation system
Build a chatbot that assists customers

Course Audience

his training course is intended for professionals interested in solving problems in the Banking sector using Artificial Intelligence.

This Artificial Intelligence (AI) in Banking training course is suitable for a wide range of professionals but will greatly benefit:

Risk managers
Marketing managers and professionals in the Banking sector
Computer programmers who intend to understand the applications of Artificial Intelligence in Banking
Technologists and researchers interested in Banking and Artificial Intelligence
Customer service managers and professionals in the Banking sector
Senior corporate Leaders, Managers, and Department Heads in the Banking sector

Course Methodology

Participants in this Artificial Intelligence in Banking training course will receive thorough training on the subjects covered by the course outline with the Tutor utilising a variety of proven adult learning teaching and facilitation techniques. Training methodology includes combining a presentation of the main concepts and hands-on practical exercises to be completed by the participant

Course Outline

Day 1: Foundations of Artificial Intelligence

Introduction to Artificial Intelligence

Artificial Intelligence and Machine Learning concepts

Typical applications across industries

System architecture overview

Software tools for AI development: Python, R, WEKA

Day 2: Data Analytics and Visualization

Data collection and preparation

Feature engineering techniques

Statistical analysis methods

Data visualization for insights

Dimensionality reduction approaches

Day 3: Supervised and Unsupervised Learning

Principles of similarity estimation

Clustering methods and customer segmentation

Association rules for pattern discovery

Recommender systems in practice

Classification models: K-Nearest Neighbors, Decision Trees, Naïve Bayes

Introduction to Artificial Neural Networks

Day 4: Natural Language Processing (NLP)

Structuring information from raw text

Regular expressions for text processing

Word features and semantic analysis

Text classification techniques

Information extraction methods

Question-answering systems

Day 5: Building Intelligent Chatbots

Extracting meaningful information from conversations

Chatbots as interactive search engines

Natural Language Understanding (NLU)

Natural Language Generation (NLG)

Developing and deploying a complete chatbot system

Upcoming Courses

Paris - France
22-26 Sep 2025
$5950
Paris - France
29 Sep-03 Oct 2025
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29 Sep-10 Oct 2025
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06-10 Oct 2025
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20-24 Oct 2025
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27-31 Oct 2025
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Paris - France
27 Oct-07 Nov 2025
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Paris - France
03-07 Nov 2025
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