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    Defending Against Generative Ai-Based Fraud

    Posted By: ELK1nG
    Defending Against Generative Ai-Based Fraud

    Defending Against Generative Ai-Based Fraud
    Published 5/2025
    MP4 | Video: h264, 1280x720 | Audio: AAC, 44.1 KHz
    Language: English | Size: 4.50 GB | Duration: 5h 43m

    How to defend against fraudulent emails, deepfakes, and many other types of fraud attempts done with generative AI.

    What you'll learn

    How to prevent fraud attempts performed with generative AI

    How to identify generative/false/synthetic content

    How to develop new defense mechanisms against these new generative threats

    How to integrate new defense mechanisms into your current organization

    Requirements

    A basic knowledge of fraud and defenses against it is advised (e.g. what is payment fraud and how to prevent it) is recommended, but not necessary

    A basic knowledge of what generative AI is, and the content it can create is recommended, but not necessary

    Description

    BEATING FRAUDFraud, including payment fraud and insurance fraud, is one of the biggest problems for organizations.And new advances in terms of generative AI have only made this worse.In the world of today, organizations and individuals must be able to not only resist fraud attempts, but resist when they leverage generative AI - which, in many cases, means faster, larger-scale and more sophisticated attacks.This course will teach you how to protect against fraud that leverages generative AI.LET ME TELL YOU… EVERYTHING.Some people - including me - love to know what they're getting in a package.And by this, I mean, EVERYTHING that is in the package.So, here is a list of everything that this course covers:You'll learn the basics of generative AI and what it can do, including common models and families of models, the characteristics of generative content, and how it can be misused due to negligence or active malevolence (including biases, misinformation, impersonation and more);You'll learn the basics of fraud and its main types (identity theft, payment fraud, investment fraud, insurance fraud, account takeover), and the main factors enabling it (technological gaps, human error, process weaknesses, data breaches);You'll learn how fraud is accelerated by generative AI (mass automation, increased authenticity, pattern evasion, synthetic identity creation, etc) and its effect on the major approaches (document forgery, transaction manipulation, synthetic identity fraud, claims fraud, etc);You'll learn about an overview of the major generative content types used in fraud attacks (text, image, audio and video), including the specific approaches that each leverage, the model training requirements and data required for attackers to train such models, and how each type can be detected;You'll learn about generative text in fraud, including the models that allow it such as LLMs, the distribution channels such as email, SMS, chats, the data required to train such models, and detection mechanisms such as behavioral analysis, authentication and text validations;You'll learn about generative image in fraud, including the models that allow it such as GANs or diffusion models, the distribution channels such as deceptive documents and images in email attachments or submission portals, the data required to train such models, and detection mechanisms such as watermarks, behavioral detection or MFA;You'll learn about generative audio in fraud, including the models that allow it such as GANs or TTS, the distribution channels such as voice messaging software or for calls, the data required to train such models, and detection mechanisms such as MFA factors, callbacks, or training employees;You'll learn about generative video in fraud, including the models that allow it such as GANs for video or deep learning models, the distribution channels such as communication tools or submission portals, the data required to train such models, and detection mechanisms such as verifying communications, anti-deepfake software, MFA;

    Overview

    Section 1: Course Intro

    Lecture 1 Course Intro

    Section 2: Fundamentals

    Lecture 2 Module Intro

    Lecture 3 Fundamentals of Generative AI

    Lecture 4 Fundamentals of Fraud

    Lecture 5 Fraud with Generative AI

    Lecture 6 Module Outro

    Section 3: Attack Mediums/Channels

    Lecture 7 Module Intro

    Lecture 8 Overview

    Lecture 9 Text

    Lecture 10 Image

    Lecture 11 Audio

    Lecture 12 Video

    Lecture 13 Module Outro

    Section 4: Gen AI Attack Approaches

    Lecture 14 Module Intro

    Lecture 15 False Documents/Accounts

    Lecture 16 Payment Process Abuse

    Lecture 17 Claims Process Abuse

    Lecture 18 Data/Account Exploitation

    Lecture 19 Module Outro

    Section 5: Defense Techniques

    Lecture 20 Module Intro

    Lecture 21 Document Verification

    Lecture 22 Behavioral Analysis

    Lecture 23 Additional Authentication

    Lecture 24 Multichannel ID Verification

    Lecture 25 Module Outro

    Section 6: Implementing Protection

    Lecture 26 Module Intro

    Lecture 27 Changes Due to Generative AI

    Lecture 28 Parallel Anomaly Analysis

    Lecture 29 Enriching Model Outputs

    Lecture 30 Detecting and Triaging Attacks

    Lecture 31 Responding and Recovering

    Lecture 32 Module Outro

    Section 7: Course Outro

    Lecture 33 Course Outro

    Fraud prevention/cybersecurity engineers focusing on preventing fraud,Data privacy and security professionals that want to better protect their organization's data,Employees of any organization that want to be better protected against fraud