Strategic AI Leadership Through Data : Build a data-driven culture and accelerate transformation (English Edition)

Description AI innovation is a leadership mandate, not a tools contest. The organizations that win align data strategy, architecture, and culture to a clear business thesis for AI. This book shows executives and managers how to turn data into an engine for innovation: selecting high-value use cases,...

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מידע ביבליוגרפי
מחבר ראשי: Sarma, Puspanjali
פורמט: Livre numérique
שפה:Anglais
יצא לאור: New Delhi : BPB Publications 2025.
Paris : Cyberlibris
גישה מקוונת:Accès Université d'Orléans et IFPM
הערה: Couverture. https://static2.cyberlibris.com/books_upload/300pix/9789365895759.jpg
Cyberlibris (ScholarVox) corpus Informatique
Autres localisations: Voir dans le Sudoc
Edition sous un autre format:• Strategic AI Leadership Through Data, Build a data-driven culture and accelerate transformation (English Edition), Puspanjali Sarma, New Delhi, BPB Publications, 2025, 1 vol. (370 p.), 978-93-6589-575-9
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505 0 |a 1. AI Renaissance in Business Innovation -- 2. Understanding the AI-First Mindset -- 3. Data Literacy for Leaders -- 4. Crafting Data Strategy Aligned with AI Goals -- 5. Data Governance, Ethics and Quality -- 6. Driving Organizational Excellence in AI Leadership -- 7. Navigating the Rise of Generative AI -- 8. Building AI-resilient Organizations -- 9. AI and Workforce Transformation -- 10. Challenges in Scaling AI -- 11. AI-driven Sustainability and ESG Goals -- 12. AI in Emerging Markets and Global Development -- 13. Leading into Future of AI-driven Transformation 
506 |a L'accès en ligne est réservé aux établissements ou bibliothèques ayant souscrit l'abonnement. Cyberlibris 
520 |a Description AI innovation is a leadership mandate, not a tools contest. The organizations that win align data strategy, architecture, and culture to a clear business thesis for AI. This book shows executives and managers how to turn data into an engine for innovation: selecting high-value use cases, building trustworthy systems, and creating operating models that scale. Inside, you will find practical playbooks, frameworks, checklists, decision trees, and case studies covering data strategy and architecture, governance and ethics, MLOps and model lifecycle, GenAI productization, risk and compliance, workforce and operating-model design, ESG integration, and execution patterns in both mature and emerging markets. Each chapter translates complex concepts into board-ready choices and day-one actions. By the end, you will be able to define an AI vision tied to measurable outcomes, prioritize and fund a roadmap, institute responsible governance, stand up cloud-native platforms, and move from pilots to enterprise platforms with confidence. You will know how to measure ROI, manage risk, and lead cross-functional change, building a durable advantage through strategic AI leadership. What you will learn: Design enterprise data strategies that unlock repeatable AI innovation; Translate business goals into prioritized, fundable AI use cases; Formulate a data strategy aligning AI objectives with a scalable architecture; Drive organizational excellence using collaboration and AI ROI frameworks; Build governance, ethics, and risk controls for responsible AI; Stand up cloud-native, secure platforms for GenAI and ML; Establish MLOps pipelines for training, deployment, and monitoring; Lead cross-functional teams, incentives, and culture for AI adoption; Scale pilots to platforms using reusable features and patterns. Who this book is for: This book is designed for executives, business leaders, and product/technology owners responsible for turning data into AI-enabled innovation. Ideal for C-suite, IT managers, and data strategists seeking practical leadership frameworks to align strategy, governance, and MLOps, no deep coding required to scale responsible, ROI-driven AI across functions and industries 
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