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Episode #36 - Leveraging Deep Learning for Deep Defense

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ink8r에서 제공하는 콘텐츠입니다. 에피소드, 그래픽, 팟캐스트 설명을 포함한 모든 팟캐스트 콘텐츠는 ink8r 또는 해당 팟캐스트 플랫폼 파트너가 직접 업로드하고 제공합니다. 누군가가 귀하의 허락 없이 귀하의 저작물을 사용하고 있다고 생각되는 경우 여기에 설명된 절차를 따르실 수 있습니다 https://ko.player.fm/legal.

Traditional cybersecurity approaches, often retrospective in nature, race to detect and respond to threats only after they've manifested. This reactive paradigm, although necessary, leaves a window of vulnerability—a time-lapse during which systems are exposed, data is compromised, and infrastructures are at risk.
Deep Instinct represents a seismic shift in the way we approach cybersecurity. What makes Deep Instinct stand out in the vast sea of cybersecurity firms lies in their use of deep learning. Inspired by the structure of the human brain, deep learning enables computers to learn from vast datasets and make independent decisions when distinguishing benign from malicious activity. This exhaustive training equips the system to recognize and thwart even the most novel threats, those that conventional systems might overlook.
While many companies leverage machine learning for post-breach detection, Deep Instinct's platform is designed for zero-time prevention. Its deep learning models, once trained, can instantaneously analyze data, making split-second decisions to halt threats in their tracks. This preemptive approach narrows the vulnerability window, fortifying systems against both known and unknown cyber adversaries.
Join Satbir and Darren as they speak with Carl Froggett, CIO & CISO, about what makes Deep Instinct unique in how they approach cyber-defense.

  continue reading

45 에피소드

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icon공유
 
Manage episode 380319596 series 3298179
ink8r에서 제공하는 콘텐츠입니다. 에피소드, 그래픽, 팟캐스트 설명을 포함한 모든 팟캐스트 콘텐츠는 ink8r 또는 해당 팟캐스트 플랫폼 파트너가 직접 업로드하고 제공합니다. 누군가가 귀하의 허락 없이 귀하의 저작물을 사용하고 있다고 생각되는 경우 여기에 설명된 절차를 따르실 수 있습니다 https://ko.player.fm/legal.

Traditional cybersecurity approaches, often retrospective in nature, race to detect and respond to threats only after they've manifested. This reactive paradigm, although necessary, leaves a window of vulnerability—a time-lapse during which systems are exposed, data is compromised, and infrastructures are at risk.
Deep Instinct represents a seismic shift in the way we approach cybersecurity. What makes Deep Instinct stand out in the vast sea of cybersecurity firms lies in their use of deep learning. Inspired by the structure of the human brain, deep learning enables computers to learn from vast datasets and make independent decisions when distinguishing benign from malicious activity. This exhaustive training equips the system to recognize and thwart even the most novel threats, those that conventional systems might overlook.
While many companies leverage machine learning for post-breach detection, Deep Instinct's platform is designed for zero-time prevention. Its deep learning models, once trained, can instantaneously analyze data, making split-second decisions to halt threats in their tracks. This preemptive approach narrows the vulnerability window, fortifying systems against both known and unknown cyber adversaries.
Join Satbir and Darren as they speak with Carl Froggett, CIO & CISO, about what makes Deep Instinct unique in how they approach cyber-defense.

  continue reading

45 에피소드

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