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01
Introduction
Introduction
02
Objectives
Objectives
03
Who Should Attend?
Who Should Attend?
04
Training Method
Training Method
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Course Outline
Course Outline
Artificial Intelligence is transitioning from a competitive advantage to a core component of business strategy. However, the gap between recognizing AI’s potential and successfully implementing it to drive innovation is vast. Many organizations pilot projects that never scale, struggle to quantify ROI, or fail to integrate AI into their core operations. This course is designed to close that gap.
This intensive, five-day program provides a robust framework for not just understanding AI, but for implementing it effectively to create new value, streamline operations, and unlock innovative business models. We move beyond the hype to focus on the practicalities: identifying the right use cases, building a data-driven foundation, managing projects, and fostering a culture of AI-powered innovation. Leave with a actionable blueprint to transform your organization with AI.
Upon successful completion of this course, participants will be able to:
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Identify and prioritize high-impact AI use cases that align with core business objectives and drive innovation.
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Develop a comprehensive AI implementation strategy, including a phased roadmap for piloting, scaling, and managing AI projects.
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Evaluate the building blocks required for AI success: data readiness, technology stack options (build vs. buy), and team structure.
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Calculate the ROI of AI initiatives and construct a compelling business case to secure executive buy-in and funding.
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Navigate the ethical, legal, and organizational challenges of AI implementation, including bias, change management, and governance.
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Lead cross-functional teams to deploy AI solutions successfully and foster a culture of continuous AI-driven innovation.
This course is designed for professionals responsible for driving innovation, digital transformation, and strategic initiatives within their organizations.
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Product Managers & Innovation Managers
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Digital Transformation Leads & Strategy Directors
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Business Unit Heads seeking to innovate their function
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IT Directors & CTOs involved in AI project execution
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Data/AI Project Managers & Program Managers
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Senior Executives (VPs, CXOs) sponsoring AI initiatives
Prerequisites: A strong understanding of business operations and strategic thinking is required. No deep technical expertise is necessary, but a comfort with data-driven concepts is beneficial.
• Pre-assessment
• Live group instruction
• Use of real-world examples, case studies and exercises
• Interactive participation and discussion
• Power point presentation, LCD and flip chart
• Group activities and tests
• Each participant receives a binder containing a copy of the presentation
• slides and handouts
• Post-assessment
Day 1: Laying the Foundation: AI as an Engine for Innovation
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Module 1: The AI Landscape for Innovators
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Demystifying AI, ML, and Generative AI: Business capabilities, not just technology.
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How AI drives innovation: From process automation to new business models (e.g., product-as-a-service, hyper-personalization).
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Module 2: Identifying AI-Powered Innovation Opportunities
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Frameworks for mapping AI capabilities to business problems and opportunities.
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Techniques for ideation and use case discovery across the value chain.
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Workshop: Brainstorming and prioritizing AI use cases for your own business challenges.
Day 2: Building Your AI Strategy and Roadmap
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Module 3: Crafting an AI Implementation Strategy
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Defining strategic goals: Competitive parity, differentiation, or market creation?
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Building a phased implementation roadmap: Pilot, scale, and integrate.
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Module 4: The Business Case for AI Innovation
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Defining and measuring success: Key Performance Indicators (KPIs) for AI projects.
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Building a financial model: Calculating ROI, TCO, and articulating value.
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Workshop: Drafting a one-page strategy and business case for a selected use case.
Day 3: The Execution Engine: Data, Technology, and Teams
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Module 5: The Fuel: Data Strategy for AI
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Assessing data assets and readiness. Introduction to data pipelines and MLOps.
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“Good enough” data: How to start without a perfect data lake.
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Module 6: The Toolbox: AI Technology Stack
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Build vs. Buy vs. Partner: Evaluating custom models, cloud AI APIs, and SaaS solutions.
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Module 7: The Talent: Building Cross-Functional AI Teams
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Assemblying the right team: data scientists, engineers, domain experts, and product owners.
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Managing AI projects: Agile methodologies for AI development.
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Case Study: Deconstructing a successful AI product launch from team formation to go-live.
Day 4: Navigating Risks and Leading Change
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Module 8: Responsible AI: Ethics, Governance, and Risk
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Identifying and mitigating risks: bias, privacy, security, and model drift.
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Implementing AI governance frameworks for trust and compliance.
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Module 9: The Human Element: Change Management
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Overcoming cultural resistance to AI-driven decisions.
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Upskilling the workforce and redesigning processes for human-AI collaboration.
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Panel Discussion: A legal expert and an HR leader discuss the practical challenges of deploying AI responsibly.
Day 5: From Project to Scale: Creating a Culture of Innovation
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Module 10: Scaling AI Across the Organization
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Moving from pilot to production: operationalizing models and integrating with business systems.
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Creating a center of excellence (CoE) to democratize AI.
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Module 11: The Future of AI Innovation
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Trends on the horizon: Generative AI, autonomous agents, and their business implications.
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Fostering a culture of continuous experimentation and learning.
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Capstone Project: Participants present their complete AI implementation plan—from strategy and use case to roadmap and risk assessment—to a panel of instructors and peers for feedback.
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Conclusion: Committing to Action. Developing a personal 90-day implementation plan.
- Course Details
- Address
Damascus
- Location
- Phone
+963 112226969
- Fees
300 $
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