AI in Logistics and SCM

The AI ​​in Logistics and Supply Chain Management course focuses on the use of artificial intelligence in SCM and Logistics in an organization.

  • Under the guidance of an experienced lecturer, participants apply the content mainly using exercises and examples from practice.
  • Top lecturers with experience and experts in their field.
  • A high degree of satisfaction of course participants.

The form of course implementation is face-to-face or online (or both forms).
The working methods used in the training programs are chosen in such a way as to ensure interactivity, adaptation of the content to the needs of the participants and a  priority focus on the transfer of knowledge into practice .

  • Understand the main uses of AI in logistics and supply chains
  • Be able to identify, prioritize and quantify AI use-cases, build a data foundation: sources, quality and data management.
  • Know the integration patterns of AI into existing systems (SAP/Dynamics, WMS, TMS) – batch, event-driven, API/EDI.
  • Be able to use AI safely and ethically. Use of generative AI.
  • Be able to process a business case and roadmap for an AI deployment project. Develop an AI deployment project: use-case definition, data, metrics and pilot KPIs.

Introduction

  • What AI means in logistics and SCM today – the difference between automation, machine learning and generative AI.
  • Value map: where AI brings measurable benefits
  • Typical pitfalls and how to avoid them
  • Current trends and opportunities
  • AI-driven inventory optimization
  • AI demand prediction.

 

How to use AI

  • connecting data, models and workflow.
  • Heuristics, optimization, ML model.
  • OTIF, inventory, shipping

Data: Standard metrics in logistics and SCM

  • Demand prediction: promo calendars, weather, holidays, POS, web signals.
  • Transportation: historical routes, traffic phenomena, loadings, windows, capacities, violations.
  • Warehouse: picking times, slotting, equipment utilization

 

Risks

  • Risks of bad scope, weak data and “AI theatre”.
  • Costs of operating models and technological lock-in.
  • Operational risks
  • Data quality: completeness, consistency, granularity, latency; DQ
  • dashboard and SLA.
  • IT security

AI vs automation in logistics processes

  • Levels of automation
  • What is worth automating.
  • Automation vs. AI in logistics – where is the border and synergies.
  • Principles of ML functioning
  • AI boundaries
  • Examples of use: forecasting, inventory, routing
  • Flexibility of digital systems: cloud/hybrid

Generative AI in practice

  • Copilot for the planner
  • Document automation.
  • AI agents
  • Secure deployment of LLM in the enterprise.

Design and implementation of an AI project: developed by participants

  • Definition of AI use-case
  • Data collection
  • Choice of KPIs
  • Project roadmap
  • Identification of risks

For course participants, we offer the possibility of subsequent application support in the form of individual consultation with a lecturer or in the form of workshops directly at the client.

To order or for more information, contact us at fbe@fbe.sk, or at phone number +421 2 544 185 13.

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We will provide you with more detailed information about the price, possible dates and training schedule.

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