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In this episode, Matt and Nauman Abuzar discuss the integration of fraud detection and anti-money laundering (AML) practices, emphasising the evolving landscape driven by AI technologies. They explore the importance of governance in implementing AI solutions, the role of stablecoins in enhancing fraud detection, and the regulatory challenges that accompany these advancements. The conversation highlights the need for collaboration between compliance teams and product developers to effectively combat fraud in a rapidly changing financial ecosystem. Key takeaways • AI is crucial for detecting fraud and money laundering patterns. • Governance is essential for implementing AI in financial institutions. • Stablecoins present new opportunities for monitoring fraud. • Collaboration between compliance and product teams is vital. • The customer journey in fraud detection starts at registration. • Dynamic data is more effective than static data in fraud detection. • Regulatory bodies are adapting to the use of AI in fraud detection. • Risk-based approaches are key in managing fraud and AML. • The integration of fraud and AML teams can enhance efficiency. • The adoption of stablecoins is accelerating in the financial sector. Soundbites: "Governance is key for this implementation." "AI can help bring efficiency in the process." "We need to be a step ahead of bad actors." Chapters 00:00 Introduction to Fraud and AML Integration 03:51 The Evolution of Fraud and AML Practices 06:26 The Role of AI in Fraud Detection 09:13 Challenges in Merging Fraud and AML Teams 11:53 The Impact of Stablecoins on Fraud Detection 14:26 Future of Fraud Detection and Compliance 17:11 Conclusion and Future Directions Keywords fraud detection, AML, AI, stablecoins, risk management, compliance, financial technology, fraud prevention, regulatory landscape, machine learning