
Most enterprises can report what AI cost them. Far fewer can say which team owns it, whether it was approved, or what it returned.
FinOpsly closes that gap. The platform governs AI spend on the same cost model that carries the cloud, data platform and SaaS an AI workload consumes, so a business unit sees the full cost of an AI initiative instead of four disconnected bills.
Capabilities include:
Cost estimation before deployment. Model an architecture and get a priced workload across model APIs, GPU capacity, warehouse consumption and storage, with the assumptions on screen. Weigh model choices against consumption you have actually measured.
Attribution that holds up in a chargeback cycle. Spend resolves to owners, teams, applications, business units and customers through hierarchies nine or more levels deep. Tagging is standardized across providers, keys and resources are labeled in bulk from plain-language rules, and whatever remains unattributed is published as a number, not absorbed.
Guardrails that act. Set budgets by project, team or API key. Catch anomalies with root cause and route them to whoever owns the resource. Surface waste that provider tooling misses, using FinOpsly's own detection models. Plan commitments across AWS, Azure and Google Cloud. Park idle compute on approved schedules, reversibly.
Financial results you can defend. Automated chargeback in a single cycle. Savings measured as what reached run-rate against a no-action baseline. Unit economics down to cost per call, per active user and per customer served.
For technology and finance leaders accountable for what AI spend returns.
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Around 25 million engineers work across dozens of distinct functions. Engineers are using New Relic as every company is becoming a software company to gather real-time insight and trending data on the performance of their software. This allows them to be more resilient and provide exceptional customer experiences. New Relic is the only platform that offers an all-in one solution. New Relic offers customers a secure cloud for all metrics and events, powerful full-stack analytics tools, and simple, transparent pricing based on usage. New Relic also has curated the largest open source ecosystem in the industry, making it simple for engineers to get started using observability.
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AI SpendOps
We provide a unified platform for engineering, finance, and FinOps teams to monitor, allocate, and enhance spending on LLM APIs from various providers. Expenses are categorized based on customizable dimensions that align with your organization's financial reporting practices.
Engineering teams experience seamless cost monitoring that doesn't impede their workflow. CTOs benefit from a consolidated view that facilitates model governance and mitigates unauthorized usage. CFOs receive high-quality financial reports for accurate forecasting, budgeting, and chargebacks, all tailored to their specific reporting frameworks. FinOps teams have access to real-time cost information across multiple providers, integrating effortlessly into their existing cloud management processes.
When your organization utilizes LLM APIs and the board inquires about spending and its justification, we serve as the definitive solution to those questions. Furthermore, our platform empowers teams to make informed financial decisions, increasing accountability and optimizing resource allocation.
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Cloudflare AI Gateway
Cloudflare AI Gateway serves as an advanced control plane for AI applications, designed to seamlessly connect to various models while dynamically managing request routing, usage tracking, billing, and logging through a single, cohesive interface. This platform empowers teams by providing enhanced visibility and oversight of their AI applications, enabling them to analyze user interactions through detailed analytics and logs, as well as efficiently manage application scalability through features like caching, rate limiting, request retries, and model fallback. By utilizing response caching and minimizing redundant API calls, AI Gateway effectively lowers costs and reduces latency, allowing frequent requests to be fulfilled directly from Cloudflare’s cache rather than relying on the original model provider. Additionally, it boosts reliability with adaptable controls that determine the timing and conditions under which model provider APIs are accessed, guided by various factors such as attributes, fallbacks, latency, cost, and availability. Importantly, routing rules can be modified directly from the dashboard or via API calls without necessitating redeployments or causing any service interruptions, ensuring a smooth operational experience. In this way, organizations can optimize their AI app performance while maintaining flexibility and control.
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