AWS Machine Learning Blog 2024年12月04日
Elevate customer experience by using the Amazon Q Business custom plugin for New Relic AI
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数字体验中断会损害客户满意度和企业绩效。应用故障、加载缓慢和服务不可用会导致用户沮丧、参与度下降和收入损失。New Relic与亚马逊Q Business合作,推出定制插件,利用AI和观测性数据,帮助企业解决工具切换、知识获取和数据解读等挑战。该插件通过自然语言界面,提供统一的解决方案,简化事件响应,增强决策,减少认知负荷,从而预防问题、减少停机时间,并维护高质量的数字体验。文章探讨了该插件的用例、工作原理、启用方法以及如何提升客户的数字体验。

🤔 **工具和上下文切换问题:**工程师使用多种监控工具、支持台和文档系统,导致SLA和SLO错失、关键事件期间的混乱以及负面财务影响增加。工具切换会减缓故障或电子商务中断期间的决策速度。

📚 **知识可访问性问题:**分散且难以访问的知识,包括操作手册和事故后报告,阻碍了有效的事件响应,导致升级缓慢、决策不确定、中断时间更长以及由于工程师冗余参与而导致的运营成本更高。

📊 **数据解释复杂性问题:**由于复杂的应用程序、众多服务和云基础设施实体以及不明确的症状-问题关系,团队成员可能难以解读监控和可观测性数据。这种复杂性阻碍了关键事件期间快速、准确的数据分析和明智的决策。

💡 **定制插件解决方案:**New Relic AI定制插件为Amazon Q Business提供了一个统一的自然语言界面,用于获取关键见解。它使用AI来研究和将发现转化为清晰的建议,并快速访问索引的操作手册和事故后报告,从而简化事件响应,增强决策,并减少管理多个工具和复杂数据集的工作量。

🚀 **潜在影响:**该插件能够更快地检测和解决事件、简化事件管理,并跨团队构建可靠性,使产品经理、客户服务专家和高管能够获取应用程序和基础设施性能监控的见解,最终提升数字体验,并建立更强大的数字基础设施。

Digital experience interruptions can harm customer satisfaction and business performance across industries. Application failures, slow load times, and service unavailability can lead to user frustration, decreased engagement, and revenue loss. The risk and impact of outages increase during peak usage periods, which vary by industry—from ecommerce sales events to financial quarter-ends or major product launches. According to New Relic’s 2024 Observability Forecast, businesses face a median annual downtime of 77 hours from high-impact outages. These outages can cost up to $1.9 million per hour.

New Relic is addressing these challenges by creating the New Relic AI custom plugin for Amazon Q Business. This custom plugin creates a unified solution that combines New Relic AI’s observability insights and recommendations and Amazon Q Business’s Retrieval Augmented Generation (RAG) capabilities, in and a natural language interface for east of use.

The custom plugin streamlines incident response, enhances decision-making, and reduces cognitive load from managing multiple tools and complex datasets. It empowers team members to interpret and act quickly on observability data, improving system reliability and customer experience. By using AI and New Relic’s comprehensive observability data, companies can help prevent issues, minimize incidents, reduce downtime, and maintain high-quality digital experiences.

This post explores the use case, how this custom plugin works, how it can be enabled, and how it can help elevate customers’ digital experiences.

The challenge: Resolving application problems before they impact customers

New Relic’s 2024 Observability Forecast highlights three key operational challenges:

The custom plugin for Amazon Q Business addresses these challenges with a unified, natural language interface for critical insights. It uses AI to research and translate findings into clear recommendations, providing quick access to indexed runbooks and post-incident reports. This custom plugin streamlines incident response, enhances decision-making, and reduces effort in managing multiple tools and complex datasets.

Solution Overview

The New Relic custom plugin for Amazon Q Business centralizes critical information and actions in one interface, streamlining your workflow. It allows you to inquire about specific services, hosts, or system components directly. For instance, you can investigate a sudden spike in web service response times or a slow database. NR AI responds by analyzing current performance data and comparing it to historical trends and best practices. It then delivers detailed insights and actionable recommendations based on up-to-date production environment information.

The following diagram illustrates the workflow.

When a user asks a question in the Amazon Q interface, such as “Show me problems with the checkout process,” Amazon Q queries the RAG ingested with the customers’ runbooks. Runbooks are troubleshooting guides maintained by operational teams to minimize application interruptions. Amazon Q gains contextual information, including the specific service names and infrastructure information related to the checkout service, and uses the custom plugin to communicate with New Relic AI. New Relic AI initiates a deep dive analysis of monitoring data since the checkout service problems began.

New Relic AI conducts a comprehensive analysis of the checkout service. It examines service performance metrics, forecasts of key indicators like error rates, error patterns and anomalies, security alerts, and overall system status and health. The analysis results in a summarized alert intelligence report that identifies and explains root causes of checkout service issues. This report provides clear, actionable recommendations and includes real-time application performance insights. It also offers direct links to detailed New Relic interfaces. Users can access this comprehensive summary without leaving the Amazon Q interface.

The custom plugin presents information and insights directly within the Amazon Q Business interface, eliminating the need to switch between the New Relic and Amazon Q interfaces, and enabling faster problem resolution.

Potential impacts

The New Relic Intelligent Observability platform provides comprehensive incident response and application and infrastructure performance monitoring capabilities for SREs, application engineers, support engineers, and DevOps professionals. Organizations using New Relic report significant improvements in their operations, achieving a 65% reduction in incidents, 10 times more deployments, and 50% faster release times while maintaining 99.99% uptime. When you combine New Relic insights with Amazon Q Business, you can further reduce incidents, deploy higher-quality code more frequently, and create more reliable experiences for your customers:

Conclusion

The New Relic AI custom plugin represents a step forward in digital experience management. By addressing key challenges such as tool fragmentation, knowledge accessibility, and data complexity, this solution empowers teams to deliver superior digital experiences. This collaboration between AWS and New Relic opens up possibilities for building more robust digital infrastructures, advancing innovation in customer-facing technologies, and setting new benchmarks in proactive IT problem-solving.

To learn more about improving your operational efficiency with AI-powered observability, refer to the Amazon Q Business User Guide and explore New Relic AI capabilities. To get started on training, enroll for free Amazon Q training from AWS Training and Certification.

About New Relic

New Relic is a leading cloud-based observability platform that helps businesses optimize the performance and reliability of their digital systems. New Relic processes 3 EB of data annually. Over 5 billion data points are ingested and 2.4 trillion queries are executed every minute across 75,000 active customers. The platform serves over 333 billion web requests each day. The median platform response time is 60 milliseconds.


About the authors

 Meena Menon is a Sr. Customer Solutions Manager at AWS.

Sean Falconer is a Sr. Solutions Architect at AWS.

Nava Ajay Kanth Kota is a Senior Partner Solutions Architect at AWS. He is currently part of the Amazon Partner Network (APN) team that closely works with ISV Storage Partners. Prior to AWS, his experience includes running Storage, Backup, and Hybrid Cloud teams and his responsibilities included creating Managed Services offerings in these areas.

David Girling is a Senior AI/ML Solutions Architect with over 20 years of experience in designing, leading, and developing enterprise systems. David is part of a specialist team that focuses on helping customers learn, innovate, and utilize these highly capable services with their data for their use cases.

Camden Swita is Head of AI and ML Innovation at New Relic specializing in developing compound AI systems, agentic frameworks, and generative user experiences for complex data retrieval, analysis, and actioning.

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数字体验 观测性 AI 事件响应 Amazon Q Business
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