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What Would 1% Do to Your Business: ML for Optimal Security Strategies

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Manage episode 435750111 series 2948336
Sisällön tarjoaa EM360. EM360 tai sen podcast-alustan kumppani lataa ja toimittaa kaiken podcast-sisällön, mukaan lukien jaksot, grafiikat ja podcast-kuvaukset. Jos uskot jonkun käyttävän tekijänoikeudella suojattua teostasi ilman lupaasi, voit seurata tässä https://fi.player.fm/legal kuvattua prosessia.

Understanding the key differences between approaches in the EU and the US can help unlock maximum value with the right security strategies. Traditional methods often fall short, but integrating Machine Learning (ML) into your security framework can transform your defence against modern threats.

Embrace a dynamic approach to security that adapts to evolving risk profiles. ML optimises your security investments and ensures that measures are tailored to specific threats, enhancing protection and efficiency.

In this episode of the Security Strategist, Chris Steffen, EMA's VP of research, speaks to Brady Harrison, Kount's Director of Customer Analytics Solution Delivery, to discuss maximising value through optimal security strategies.

Key Takeaways:

  • Finding a balance between fraud prevention and sales generation is crucial for optimising security strategies.
  • Machine learning can help businesses make informed, risk-based decisions by analysing large volumes of data in real-time.
  • Optimising security investments involves evaluating the cost-benefit trade-offs and setting appropriate risk thresholds.

Chapters:

00:00 - Introduction to the Security Strategist podcast

00:25 - Introduction to Kount and its focus on customer analytics and fraud prevention

01:49 - Differences between EU and US security strategies

05:12 - Balancing fraud prevention and sales conversion

08:59 - Optimizing security investments with machine learning

14:43 - Advantages of machine learning in security

18:31 - Setting security strategy based on machine learning

23:47 - Treating customers as good until proven otherwise

25:11 - Conclusion and call to action

  continue reading

118 jaksoa

Artwork
iconJaa
 
Manage episode 435750111 series 2948336
Sisällön tarjoaa EM360. EM360 tai sen podcast-alustan kumppani lataa ja toimittaa kaiken podcast-sisällön, mukaan lukien jaksot, grafiikat ja podcast-kuvaukset. Jos uskot jonkun käyttävän tekijänoikeudella suojattua teostasi ilman lupaasi, voit seurata tässä https://fi.player.fm/legal kuvattua prosessia.

Understanding the key differences between approaches in the EU and the US can help unlock maximum value with the right security strategies. Traditional methods often fall short, but integrating Machine Learning (ML) into your security framework can transform your defence against modern threats.

Embrace a dynamic approach to security that adapts to evolving risk profiles. ML optimises your security investments and ensures that measures are tailored to specific threats, enhancing protection and efficiency.

In this episode of the Security Strategist, Chris Steffen, EMA's VP of research, speaks to Brady Harrison, Kount's Director of Customer Analytics Solution Delivery, to discuss maximising value through optimal security strategies.

Key Takeaways:

  • Finding a balance between fraud prevention and sales generation is crucial for optimising security strategies.
  • Machine learning can help businesses make informed, risk-based decisions by analysing large volumes of data in real-time.
  • Optimising security investments involves evaluating the cost-benefit trade-offs and setting appropriate risk thresholds.

Chapters:

00:00 - Introduction to the Security Strategist podcast

00:25 - Introduction to Kount and its focus on customer analytics and fraud prevention

01:49 - Differences between EU and US security strategies

05:12 - Balancing fraud prevention and sales conversion

08:59 - Optimizing security investments with machine learning

14:43 - Advantages of machine learning in security

18:31 - Setting security strategy based on machine learning

23:47 - Treating customers as good until proven otherwise

25:11 - Conclusion and call to action

  continue reading

118 jaksoa

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