Jarvis is a secured AI solution designed to accelerate your organization's AI adoption journey by balancing cost-efficiency, robust control, and future-proof flexibility. It empowers businesses to establish clear guardrails, ensure regulatory compliance, and monitor AI usage effectively, driving innovation while maintaining complete oversight and control. Full integration with Agent, MCP and knowledgebase.
Highlights
Data Privacy
Sensitive enterprise data stays secure with private deployment
Full Control
Customizable enterprise policies and robust guardrails, Agent, MCP Server Integration.
AI Access
Seamless integration with leading AI providers
AWS Marketplace now accepts line of credit payments through the PNC Vendor Finance program. This program is available to select AWS customers in the US, excluding NV, NC, ND, TN, & VT.
Pricing is based on the duration and terms of your contract with the vendor. This entitles you to a specified quantity of use for the contract duration. If you choose not to renew or replace your contract before it ends, access to these entitlements will expire.
Additional AWS infrastructure costs may apply. Use the AWS Pricing Calculator to estimate your infrastructure costs.
You choose one of three plans billed under a contract, each priced by host. The plans build on each other. Basic Plan gives you Agent Flow with one LLM integration. Pro Plan adds Guardrails, which filter sensitive data and enforce content policies. Enterprise Plan adds a Knowledge Base that makes your content callable by agents. Each step includes everything in the plan before it, so pricing scales with the governance and retrieval features you need. Enterprise Plan pricing is set through the vendor, since it supports custom features. Contact the vendor for Enterprise pricing details.
Top-of-mind questions for buyers
What counts as one host for billing across these plans?
A host is one server or instance where Jarvis runs. You are billed per host under your contract. Each machine you deploy the platform on counts separately. Your total cost scales with the number of hosts you run, multiplied by the plan you select.
What does the Guardrails feature in the Pro Plan actually control?
Guardrails filter both inbound and outbound LLM interactions. They detect and redact personally identifiable information, block restricted topics, and log all messages for auditing. Role-based access controls limit model usage. This keeps sensitive data inside your environment and supports compliance requirements.
If I move from Basic to Enterprise, do I keep the earlier features?
Yes. Each plan includes everything in the plan before it. Basic gives Agent Flow with one LLM integration. Pro adds Guardrails. Enterprise adds a Knowledge Base that makes your content callable by agents. Enterprise pricing is set through the vendor, since it supports custom features.
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Agent workflows have transformed clinical content creation and streamline complex data querying
Reviewed on Jan 09, 2026
Review from a verified AWS customer
What is our primary use case?
I use JARVIS to build content creation agents that create web page and other relevant content based on highly technical Physician Researcher discussions of clinical trial data.
How has it helped my organization?
JARVIS is a game changer. It allows my team to streamline the effective querying of curated data in my DynamoDB via an MCP Server connection, to create highly technical reliable outputs. The agentic platform is excellent for streamlining workflows and rapidly building efficiencies from agentic collaboration. This also allows for the effective use of data which would overwhelm the input tokens of most off-the-shelf LLM tools.
What is most valuable?
The ability to create agents with specific querying of my DynamoDB tables is incredibly efficient. Once an effective agent has been created, I just 'rinse and repeat.' This has added an entirely different scale to my organization's output in a very technical and precise space.
What needs improvement?
A Visual Agentic Workflow similar to N8N or Make.com would be helpful for some agent operators.
For how long have I used the solution?
I have used the solution for 4 months.
Which solution did I use previously and why did I switch?
I have used Google Workflow, Make.com, and N8N, and the agentic creation with JARVIS is perhaps the most effective, especially when synced with my custom MCP server.
What's my experience with pricing, setup cost, and licensing?
I find the pricing model to be very fair. With the advancements in AI workflows from Microsoft and Google, one can streamline their agentic needs with JARVIS by querying from a custom AWS Agentcore MCP Server and utilizing Google Workspace integration for various final outputs like NotebookLM with Google.
Which other solutions did I evaluate?
I have considered alternate solutions like Claude Desktop and Scout.
What other advice do I have?
I recommend building a knowledge base for your organization quickly regarding the effective data query structure for the various tables deployed in your MCP server. Rank and file users should spend more time using current agents versus creating agents. I would recommend building agents with JARVIS prioritized based on replacing inefficient current workflows. It is best to deploy with a set of proven agents and allow your team to iterate from there.