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通用信息

地点:Austin, Texas, United States of America 
  • 地点: Galway
  • 州:
  • 国家/地区: Ireland


角色 ID
214722
工作人员类型
Temporary Employee
工作室/部门
Fan Growth
弹性工作安排
Hybrid

Description & Requirements

Electronic Arts 打造更高层次的娱乐体验,激励世界各地的玩家和粉丝。在这里,每个人都是故事的主角。活跃社群,畅联全球。这里充满创造力,鼓励新观点,注重好创意。这是一支人人都能让游戏成为现实的团队。

Knowledge Manager – AI Systems
18 Month Temporary Contract

We are seeking a Knowledge Management Lead to define, operate, and scale the knowledge management capabilities that power AI-driven player support and fan experiences.

This role sits at the intersection of product, content, operations, and technology. You will partner with Product, Engineering, Content, Fan Care, and Studio teams to ensure knowledge is structured, governed, accurate, and optimized for both human and machine consumption.

The role is responsible for treating knowledge as a core dependency for AI systems: machine-readable, versioned, traceable, reusable, and safe for real-time retrieval and execution. You will help define the strategy while also operating the workflows, standards, and governance needed to manage knowledge at scale.

This role reports to the Director of Product for Self-Service Fan Care.

Key responsibilities

1. Knowledge strategy and structure

  • Define and evolve the knowledge management strategy for AI-driven player support.

  • Translate product and AI needs into knowledge models, schemas, metadata, taxonomies, and system requirements.

  • Define knowledge structure, metadata, taxonomy, and governance requirements that enable reliable search, retrieval, API access, and AI consumption.

  • Ensure knowledge is modular, reusable, and structured for both human and machine consumption.

2. Knowledge operations and lifecycle management

  • Own the knowledge lifecycle: intake, creation, validation, publishing, versioning, monitoring, and deprecation.

  • Operate and improve workflows for knowledge updates, quality control, and real-time change management.

  • Identify knowledge gaps, duplication, conflicts, and stale content, then drive resolution with owning teams.

  • Drive the creation and curation of accurate, structured, AI-ready knowledge from priority I've shared source materials and player signals in partnership with other teams.

3. AI readiness, retrieval, and optimization

  • Partner with Product and Engineering to improve how AI systems retrieve, assemble, and use knowledge.

  • Diagnose AI output issues by tracing failures back to gaps in knowledge structure, quality, coverage, or governance.

  • Improve retrieval performance, including relevance, precision, recall, freshness, and latency.

  • Contribute to evaluation frameworks that connect knowledge quality to AI performance and player outcomes.

4. Governance, quality, and risk controls

  • Establish governance models for ownership, approvals, access controls, certification, and escalation.

  • Implement standards for versioning, traceability, auditability, freshness, and source authority.

  • Define controls that reduce risk from outdated, conflicting, unapproved, or misapplied knowledge.

  • Ensure policy, instructional, and factual knowledge are clearly separated and enforceable for AI systems.

5. Cross-functional enablement

  • Drive cross-functional adoption of AI-ready knowledge standards, including structured authoring, tagging, validation, ownership, and lifecycle governance.

  • Enable knowledge contributors to create, curate, and maintain reusable knowledge that improves AI accuracy, trust, and player experience.

Required qualifications

  • 4–6+ years in Knowledge Management, Content Systems, Content Operations, Information Architecture, or related roles.

  • Experience operating enterprise knowledge, CMS, or content systems in digital product environments.

  • Strong understanding of metadata, taxonomy, ontology, structured content, and information architecture.

  • Experience with knowledge lifecycle management, governance workflows, and content quality standards.

  • Understanding of search, retrieval, RAG, or AI knowledge consumption patterns.

  • Strong analytical and systems-thinking skills, especially in diagnosing how information flows through digital systems.

  • Experience working cross-functionally with Product, Engineering, Content, Operations, and business stakeholders.

Preferred qualifications

  • Experience supporting AI, conversational, agentic, or automation-based systems.

  • Familiarity with RAG, GraphRAG, vector search, knowledge graphs, semantic layers, or API-based knowledge access.

  • Experience with traceability, auditability, versioning, and governance for AI or regulated systems.

  • Experience scaling knowledge practices across multiple teams, regions, products, or content sources.

  • Experience working with multimodal knowledge, including structured data, text, media, and community-generated signals.



Electronic Arts
我们拥有全面的游戏组合和丰富的体验,在世界各地设有分支机构,而且在整个 EA 提供大量机会。我们非常重视适应能力、韧性、创造力和好奇心。我们提供领导岗位让您发挥潜力,为学习和尝试提供空间,赋能您出色地完成工作并寻求成长的机会。

我们对福利计划采用整体方法,强调身体、情感、财务、职业和社区健康,以支持平衡的生活。我们的套餐专为满足当地需求而量身定做,可能包括医疗保险、心理健康支持、退休储蓄、带薪休假、家事休假、免费游戏等。我们营造和谐的环境,让各个团队始终都能尽展所能。

Electronic Arts 是一个注重机会平等的雇主。在聘用员工时不会考虑其种族、肤色、国籍、血统、生理性别、社会性别、性别认同或表达、性取向、年龄、遗传信息、宗教、身心障碍、医疗状况、怀孕状况、婚姻状况、家庭状况或兵役状况,或任何受法律保护的其他特征。我们也会遵守相关法律,考虑招聘有过犯罪记录的合格应聘者。EA 还会根据适用法律的要求,为合资格的残障人士提供工作场所的便利。