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Mallory Unifies Threat Intelligence, Exposure Context, and Response Into One Architecture for Security TeamsLAS VEGAS, Aug. 04, 2026 (GLOBE NEWSWIRE) --
As AI-assisted attackers compress exploitation timelines to hours, Mallory turns live adversary intelligence into prioritized, policy-governed action across the tools security teams already run Mallory, the AI-native Threat and Exposure Management platform, today introduced a unified context and intelligence layer for security teams. The architecture has three parts: a context graph that correlates attack surface, threat, and vulnerability data; an intelligent reasoning layer that determines what matters and why; and a policy and governance layer that routes prioritized work into action under each customer's own rules. One foundation supports exposure investigation, threat hunting, supply chain risk management, and vulnerability prioritization, rather than locking teams into a single fixed workflow. "Our vision is an intelligent, agentic platform constantly evaluating whether a threat is actually a risk in your environment, so your team gets a faster, sharper response and spends its time on the risk that matters. The intelligence to hunt threats, prioritize exposures, and build detections all starts from the same data, so it shouldn't take three tools to make it work. And when a working exploit lands in hours, a queue ranked by a severity score that doesn't know who's attacking you is wasting your best analysts on work that should be automated," said Jonathan Cran, founder and CEO of Mallory. The context graph, reasoning layer, and policy layer are fully separable, so Mallory fits any security team's stack, not just one built around it. Teams that just want a contextual data source can plug Mallory's threat and contet data straight into the workflows they already run. Teams ready to go further can adopt Mallory's agentic harness out of the box, handing routine exposure remediation to agents at scale, all within the policy guardrails they define and control. AI-assisted attackers have collapsed the cost and time of finding exploitable flaws, and security teams are drowning in intel they cannot act on fast enough. Point tools force teams to choose between prioritizing exposures, hunting for threats, or building detections, when the real problem is upstream: knowing what to look for, where to look for it, and being fast and cost-effective enough to act on it. Mallory's architecture is built to close that gap once, at the layer underneath all three problems, rather than solving each one separately.
Mallory Founder, Jonathan Cran, writes about its origin in the blog: Adversary Timelines Have Collapsed: Defenders Must Rethink Proactive Security with Agents About Mallory: Mallory unifies threat intelligence, exposure context, and response into one architecture for security teams. It monitors adversary activity, contextualizes it against an organization's attack surface, and converts fragmented telemetry into prioritized, evidence-based action. Four components work together: threat intelligence, a unified context graph, an agentic harness that investigates and writes cases, and a policy and governance layer that keeps agent work scoped, auditable, and controlled. Security teams run Mallory on their own models, keys, and infrastructure. Founded in 2024 and headquartered in Austin, Texas, Mallory is backed by Decibel Partners, LiveOak Ventures, and Aviso Ventures. Users can learn more at mallory.ai. Contact Head of Marketing A photo accompanying this announcement is available at https://www.globenewswire.com/NewsRoom/AttachmentNg/bee8c311-bdee-4ebd-a9c3-634201c13c70
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