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Dynamic Pricing and Revenue Algorithms: Yield Management, Margin Maximization, and the Science of Real Time Price Control

by Bramwell Sloane
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Current price ₹1,594.00
Original price ₹1,765.00
Original price ₹1,765.00
Original price ₹1,765.00
(-10%)
₹1,594.00
Current price ₹1,594.00

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Book cover type: Paperback
  • ISBN13: 9798259462199
  • Binding: Paperback
  • Subject: N/A
  • Publisher: Independently Published
  • Publisher Imprint: Independently Published
  • Publication Date:
  • Pages: 256
  • Original Price: GBP 13.57
  • Language: English
  • Edition: N/A
  • Item Weight: 599 grams
  • BISAC Subject(s): Data Science / Data Analytics

Practical pricing strategy for modern businesses

This book brings together the core ideas, methods, and operating discipline behind dynamic pricing and revenue management. It shows how to move from intuition-based pricing to structured decision-making using data, forecasting, optimization, and controlled experimentation. The emphasis is on real business use, where capacity, urgency, margin, and customer response all shape the best price at the right moment.

Readers are guided through the full workflow, from understanding pricing objectives and building reliable data foundations to estimating demand, managing inventory and fare classes, and setting rules for real time price updates. The chapters also cover margin focused optimization, elasticity estimation, and algorithmic approaches for both discrete price ladders and continuous pricing problems.

What this book helps you do
  • Define pricing goals using revenue, margin, and capacity constraints.
  • Design data pipelines and feature stores for pricing systems.
  • Build and validate demand forecasts under changing price conditions.
  • Apply yield management tools such as protection levels, bid prices, and overbooking controls.
  • Estimate price sensitivity with observational data and stabilize results with good modeling practice.
  • Use bandits, reinforcement learning, and experiment design to improve pricing decisions safely.
  • Set guardrails for compliance, fairness, and operational risk.

The later chapters focus on how these ideas work in production, including latency aware decision architecture, model serving, logging, monitoring, and backtesting. This makes the book especially useful for pricing teams, revenue managers, data scientists, product leaders, and analysts who need both strategy and implementation detail.

Clear, applied, and methodical, this is a strong reference for anyone building or improving intelligent pricing systems across travel, retail, marketplaces, subscriptions, and other demand driven businesses.

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