Risk Modeling for Supply Chain & Operations with Monte Carlo: Building Robust Models in Excel and Python

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Bol Reactive PublishingIn today's volatile global markets, supply chain and operations professionals face unprecedented uncertainty. From demand fluctuations and supplier disruptions to price volatility and geopolitical risks, traditional deterministic models often fall short. This practical guide shows you how to build robust, data-driven risk models using Monte Carlo simulation, one of the most powerful techniques for quantifying uncertainty and making better decisions under risk.You will learn how to: - Construct Monte Carlo simulations from the ground up in both Excel and Python- Model key supply chain and operations risks including demand variability, lead time uncertainty, price fluctuations, and inventory risk- Translate complex real-world problems into probabilistic models- Analyze simulation outputs to generate actionable insights and risk metrics- Compare deterministic vs. stochastic approaches and understand when Monte Carlo adds the most value- Build reusable, professional-grade models suitable for both quick analysis and enterprise environmentsWritten for supply chain analysts, operations managers, risk professionals, and data-savvy practitioners, this book bridges the gap between theory and hands-on implementation. Whether you work in manufacturing, logistics, retail, or procurement, you'll gain concrete skills to stress-test your supply chain and improve resilience.

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Reactive PublishingIn today's volatile global markets, supply chain and operations professionals face unprecedented uncertainty. From demand fluctuations and supplier disruptions to price volatility and geopolitical risks, traditional deterministic models often fall short. This practical guide shows you how to build robust, data-driven risk models using Monte Carlo simulation, one of the most powerful techniques for quantifying uncertainty and making better decisions under risk.You will learn how to: - Construct Monte Carlo simulations from the ground up in both Excel and Python- Model key supply chain and operations risks including demand variability, lead time uncertainty, price fluctuations, and inventory risk- Translate complex real-world problems into probabilistic models- Analyze simulation outputs to generate actionable insights and risk metrics- Compare deterministic vs. stochastic approaches and understand when Monte Carlo adds the most value- Build reusable, professional-grade models suitable for both quick analysis and enterprise environmentsWritten for supply chain analysts, operations managers, risk professionals, and data-savvy practitioners, this book bridges the gap between theory and hands-on implementation. Whether you work in manufacturing, logistics, retail, or procurement, you'll gain concrete skills to stress-test your supply chain and improve resilience.

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Pages: 442, Paperback, Independently published


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Merk Independently Published
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  • 9798198364493
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