London Design Gold

2026

Article Optimization

Entrant

ServiceNow, Inc.

Category

User Experience Design (UX) - Work & Productivity

Client's Name

ServiceNow, Inc.

Country / Region

United States

ServiceNow Article Optimization is an AI-assisted system that helps organizations continuously improve the quality of their knowledge at scale.



Enterprise knowledge is only valuable when it is accurate, accessible, and easy to find. Yet most knowledge is created by subject-matter experts who are not trained in content optimization. Issues such as missing accessibility tags, weak titles, structural inconsistencies, or duplicate content often go unnoticed. At scale, these invisible gaps accumulate, reducing search effectiveness, limiting accessibility, and weakening user trust.



Article Optimization addresses this challenge by making knowledge quality visible, understandable, and actionable.



Integrated directly into the authoring experience, the system surfaces real-time recommendation cards that detect quality issues across accessibility, SEO, structure, and content integrity. Each recommendation explains why the issue matters and provides guided actions to resolve it. Authors can review, edit, accept, or dismiss suggestions with full control, turning improvement into a natural part of their workflow.



The system combines AI-powered recommendations with rule-based checks, ensuring both complex and deterministic issues are handled efficiently. Organizations can configure and customize these recommendation cards through flexible optimization rules, allowing teams to define what quality means for their specific knowledge standards.



Beyond the editor, administrators can configure optimization jobs and scans across knowledge bases, enabling governance and consistency at enterprise scale.



Rather than acting as a black-box automation tool, Article Optimization is designed to educate and empower. It transforms quality improvement from a reactive, manual process into a continuous, intelligent system that evolves with every edit.

Credits

Lead Product Designer
Yizhen Chen
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