
Gemini Enterprise Agent Platform is Google Cloud’s next-generation system for designing and managing advanced AI agents across the enterprise. Built as the successor to Vertex AI, it unifies model selection, development, and deployment into a single scalable environment. The platform supports a vast ecosystem of over 200 AI models, including Google’s latest Gemini innovations and popular third-party models. It offers flexible development tools like Agent Studio for visual workflows and the Agent Development Kit for deeper customization. Businesses can deploy agents that operate continuously, maintain long-term memory, and handle multi-step processes with high efficiency. Security and governance are central, with features such as agent identity verification, centralized registries, and controlled access through gateways. The platform also enables seamless integration with enterprise systems, allowing agents to interact with data, applications, and workflows securely. Advanced monitoring tools provide real-time insights into agent behavior and performance. Optimization features help refine agent logic and improve accuracy over time. By combining automation, intelligence, and governance, the platform helps organizations transition to autonomous, AI-driven operations. It ultimately supports faster innovation while maintaining enterprise-grade reliability and control.
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Admin By Request EPM is an endpoint privilege management solution for Windows, macOS, and Linux. It removes permanent local admin rights and grants elevation only when a task requires it, so a compromised account can't take over an entire system. Elevation applies to applications rather than user accounts, and privileges can be delegated by user or group to fit developers, general staff, and third-party contractors alike. Threat and behavioral analytics identify risky users, assets, and software, and every session is logged for auditing. The solution runs from a single portal, works online or offline, and requires no additional servers or databases.
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LLM Gateway
LLM Gateway is a completely open-source, unified API gateway designed to efficiently route, manage, and analyze requests directed to various large language model providers such as OpenAI, Anthropic, and Gemini Enterprise Agent Platform, all through a single, OpenAI-compatible endpoint. It supports multiple providers, facilitating effortless migration and integration, while its dynamic model orchestration directs each request to the most suitable engine, providing a streamlined experience. Additionally, it includes robust usage analytics that allow users to monitor requests, token usage, response times, and costs in real-time, ensuring transparency and control. The platform features built-in performance monitoring tools that facilitate the comparison of models based on accuracy and cost-effectiveness, while secure key management consolidates API credentials under a role-based access framework. Users have the flexibility to deploy LLM Gateway on their own infrastructure under the MIT license or utilize the hosted service as a progressive web app, with easy integration that requires only a change to the API base URL, ensuring that existing code in any programming language or framework, such as cURL, Python, TypeScript, or Go, remains functional without any alterations. Overall, LLM Gateway empowers developers with a versatile and efficient tool for leveraging various AI models while maintaining control over their usage and expenses.
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TrustedRouter
TrustedRouter serves as a privacy-centric AI gateway, enabling developers to interact with over 600 AI models from more than 90 providers via a single API that is compatible with OpenAI. It ensures privacy by routing requests through a verified gateway that refrains from logging any prompt or output data, maintaining a clear separation between the production prompt pathway and the management dashboard, ensuring that even the engineers cannot access the requests made. Developers can seamlessly continue using the OpenAI SDK by simply adjusting one base URL, while they have the flexibility to select either direct model identifiers or routing aliases, which facilitate healthy provider transitions, utilize zero-retention options, ensure secure compute processing, focus on EU-centric routing, and enable multi-model synthesis. Features like provider failover, regional routing, and ongoing model health monitoring are integrated to prevent any single upstream failure from resulting in a service disruption. Operating across major cloud platforms like GCP, AWS, and Azure, TrustedRouter also makes available metrics on latency, availability, source code, deployment infrastructure, SDKs, and trust verification for thorough examination, thus promoting transparency and reliability in its services. This commitment to openness and security builds trust with developers who prioritize privacy in their applications.
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