NINA AI: Agents for 
Cybersecurity Teams

Close the gap with AI-accelerated adversaries. Automate manual workflows, accelerate threat investigation and response, and free analysts for high-value work.

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Trusted by Pioneers in Prevention

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Zynap’s Multi-Agent Engine

Context-aware agents that partner with you to reduce hours of manual work, driving efficiency, scalability, and stronger security operations.

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Outpace AI-Driven Attacks

Cut MTTD and MTTR with context-driven AI automation, enhancing team efficiency to detect and neutralize threats before AI-accelerated attacks have time

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Human-in-the-Loop System

Use ready-to-go agents built by our security experts, or design your own, defining identity, instructions, and tools. Either way, agents reason autonomously and every step is visible to you.

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Mantain your Data Privacy

Use any model from any provider. Different agents can run different models, pick the best for each task. New models arrive automatically, with zero markup on AI costs.

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Proprietary Intelligence

Replace generic AI with Zynap's proprietary intel: real malware, adversary TTPs & cybercrime activity. Citable answers, validated workflows, every action grounded in your environment.

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Inside NINA: Where Intel becomes Action

NINA investigate threats, automate and fix security workflows, pull live threat intel, score vulnerabilities, and act in real time with full context of your environment.

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NINA selects and coordinates the right agents for every request. Discover some of them:

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Security Knowledge Agent

Answers cybersecurity questions grounded in Zynap's intelligence and platform documentation, citing real sources and never fabricating references.

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Workflow Design Agent

Designs and builds complete security workflows through conversation, producing a validated blueprint with visual diagram, ready to deploy once you confirm.

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Troubleshooting Agent

Acts as your on-demand mechanic for failed workflows, diagnosing the cause, identifying broken nodes, applying fixes, and re-running to verify resolution.

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Threat Intelligence Agent

Real-time queries across threat actors, malware samples, CVEs, and credential exposure data, with cross-correlation and composite risk scoring built in.

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Agents that Outpace Modern Threats

A growing set of specialized cybersecurity agents that live across the platform, ready to use, or fully customizable with your own models and tools. AI that fits the way your team works.

Custom agents

Build AI agents with the LLM and MCP tool of your choice to reason autonomously and execute multi-step tasks across your workflows.

Autonomous Reasoning

Custom Agents reason in a loop: they read data, choose tools, execute, evaluate results, and iterate until the task is done. Watch every step live in the Thought Process panel.

Agent-to-Agent Chaining

Build multi-agent pipelines where specialized agents hand off to each other. Each agent in the chain has its own model, tools, and instructions

Workflow-Native Architecture

Inside any workflow, Custom Agents run as nodes sharing context with the rest of the canvas. Files, scanners, and integrations are automatically available to your agent.

Connect Any Tool via MCP

Give agents access to any external tool through the Model Context Protocol. Connect public services or your own infrastructure, with tools auto-discovered on connection.

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Ready-to-use agents

Our Automation Agents work out of the box inside any workflow, with zero setup and no prompt engineering required.

Data Transformation Agent

Generates code from natural language to transform, normalize, and enrich large telemetry volumes, enabling seamless integrations and intelligence.

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Scripting Agent

Transforms tasks into operational scripts, generating and running optimized code instantly, simplifying coding, troubleshooting, and automation.

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Summarize Agent

Condenses validated, context-relevant content into clear, actionable summaries, removing noise and highlighting key insights.

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Info Screening Agent

Filters and classifies documents by context, extracting relevant insights and removing noise from keyword-based matches.

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Our Solutions

Use Cases

Threat Intelligence

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Transform external intel into immediate action for clients.

Offensive Security

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Enhance client defenses with safe, AI-powered adversary simulations enriched by real threat intelligence context.

Security Operations

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Go beyond basic detection and response to deliver faster, more consistent, and fully contextualized protection.

Capabilities

Automate Your Cybersecurity Lifecycle

Threat Intelligence and Data Sources

From TTPs to credentials, act instantly with correlated, contextual intelligence.

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Automation and Workflows

Build workflows fast with low-code tools, AI agents, and a collaborative canvas.

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Credentials Intelligence

Validate credentials, spot true exploits, and act with instant threat context.

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Discover how Zynap makes it real.

The Future of Cybersecurity is Preemptive

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Frequently asked questions

What are examples of AI agents in cybersecurity?

Common examples of AI agents in cybersecurity include: threat enrichment agents that automatically gather context around indicators of compromise (IOCs); OSINT investigation agents that scrape and correlate open-source data about threat actors; scripting agents that write and execute custom detection rules; and response agents that draft incident reports or trigger containment actions.

Zynap offers all of these as pre-built agent types within its NINA AI, covering automation, investigation, and backend integration workflows.

How do AI agents improve security operations (SOC) efficiency?

AI agents improve SOC efficiency by eliminating the manual, repetitive work that consumes analyst time: alert triage, log correlation, enrichment lookups, and report writing. By automating these tasks, they directly reduce Mean Time to Detect (MTTD) and Mean Time to Respond (MTTR), while freeing up analyst time for more complex tasks.

Zynap’s agents are designed with a human-in-the-loop model, so analysts receive confidence-scored outputs with clear approval gates rather than fully autonomous decisions, maintaining oversight while removing toil.

Can AI agents be used by MSSPs?

Yes. AI agents are well-suited to Managed Security Service Providers (MSSPs) because they enable analysts to handle a higher volume of client environments.

Zynap’s platform is purpose-built for MSSP use cases, supporting multi-tenant workflows, integration with existing SIEM and SOAR tools, and agent-driven automation that can run across multiple client environments simultaneously.

This allows MSSPs to deliver faster response times while controlling operational costs.

What is a human-in-the-loop AI agent?

A human-in-the-loop AI agent is one that incorporates defined checkpoints where a human reviews and approves the agent's findings or proposed actions before they are executed. This design is particularly relevant in high-stakes environments like cybersecurity, where a fully autonomous action could have significant operational consequences if the agent's reasoning was based on incorrect or incomplete data.

In Zynap, agents are fully customizable: customers decide whether (and where) to introduce human checkpoints based on the risk profile and operational requirements of each workflow. Some agents can be configured to run fully autonomously, while others may include one or more human approval gates at critical decision points. When checkpoints are defined, Zynap surfaces the agent's reasoning and supporting context, including confidence indicators where applicable, so analysts can approve, adjust, or override the proposed action with full visibility.

How do AI agents handle data privacy and sensitive security data?

Enterprise-grade AI agent platforms address data privacy by supporting on-premises LLM deployment, which means sensitive data never leaves the organization’s infrastructure. Zynap’s platform is designed with this requirement, offering encrypted API communication and governance frameworks that ensure compliance with enterprise data handling policies.

This is especially relevant for MSSPs and regulated industries where data residency requirements prohibit sending information to third-party cloud LLMs.