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Architectural Engineering
BIM Execution Planning (BEP) Training Course
Introduction
Building Information Modeling is transforming the architecture, engineering, and construction industry by enabling data-driven collaboration, digital workflows, and lifecycle asset intelligence. A well-structured BIM Execution Plan (BEP) is the backbone of successful BIM adoption, ensuring standardization, interoperability, information governance, and project efficiency across multidisciplinary teams. BIM Execution Planning (BEP) Training Course is designed to equip professionals with cutting-edge BIM strategies, ISO 19650 compliance, Common Data Environment (CDE) workflows, and digital twin integration, enabling seamless coordination from design to facility management.
In todayβs fast-evolving AEC landscape, organizations demand high-performance BIM leadership, automation, cloud collaboration, and sustainable design practices. This BEP training delivers practical insights into BIM standards, clash detection, model validation, 4D/5D simulation, and risk mitigation strategies, empowering participants to drive innovation, cost optimization, and project delivery excellence. Through real-world case studies, hands-on exercises, and industry best practices, learners will master how to develop and implement a robust BEP aligned with global standards and emerging technologies.
Programme Curriculum
BIM Execution Planning (BEP) Training Course
Introduction
Building Information Modeling is transforming the architecture, engineering, and construction industry by enabling data-driven collaboration, digital workflows, and lifecycle asset intelligence. A well-structured BIM Execution Plan (BEP) is the backbone of successful BIM adoption, ensuring standardization, interoperability, information governance, and project efficiency across multidisciplinary teams. BIM Execution Planning (BEP) Training Course is designed to equip professionals with cutting-edge BIM strategies, ISO 19650 compliance, Common Data Environment (CDE) workflows, and digital twin integration, enabling seamless coordination from design to facility management.
In todayβs fast-evolving AEC landscape, organizations demand high-performance BIM leadership, automation, cloud collaboration, and sustainable design practices. This BEP training delivers practical insights into BIM standards, clash detection, model validation, 4D/5D simulation, and risk mitigation strategies, empowering participants to drive innovation, cost optimization, and project delivery excellence. Through real-world case studies, hands-on exercises, and industry best practices, learners will master how to develop and implement a robust BEP aligned with global standards and emerging technologies.
Course Duration
10 days
Course Objectives
Develop ISO 19650-compliant BIM Execution Plans for global projects
Master Common Data Environment (CDE) workflows for seamless collaboration
Implement data governance and information management strategies
Enhance multidisciplinary coordination and clash detection
Apply 4D scheduling and 5D cost estimation techniques
Integrate digital twin and smart asset management concepts
Optimize BIM workflows using automation and AI tools
Ensure interoperability using open BIM standards (IFC, COBie)
Strengthen risk management and quality assurance processes
Drive sustainable design and green building practices
Improve stakeholder communication and BIM leadership skills
Utilize cloud-based BIM collaboration platforms
Achieve efficient project delivery and lifecycle management
Target Audience
BIM Managers & Coordinators
Architects & Urban Designers
Civil, Structural & MEP Engineers
Project Managers & Construction Managers
Facility & Asset Managers
Contractors & Subcontractors
Digital Transformation & Innovation Leaders
Students & AEC Professionals transitioning to BIM
Course Modules
Module 1: Introduction to BIM & BEP
BIM fundamentals and evolution
BEP purpose and structure
Key BIM standards overview
Roles and responsibilities
Benefits of BEP
Case Study: Implementation of BIM in large-scale infrastructure project
Module 2: BIM Standards & ISO 19650
ISO 19650 framework
Information management principles
Naming conventions
Documentation standards
Compliance strategies
Case Study: ISO 19650 adoption in international projects
Module 3: Common Data Environment (CDE)
CDE concepts and tools
Data sharing workflows
Version control
Security and access control
Collaboration platforms
Case Study: Cloud-based CDE in mega construction project
Module 4: BEP Development Process
Pre-contract vs post-contract BEP
BEP templates
Stakeholder inputs
Execution strategies
Approval workflows
Case Study: BEP creation for commercial building
Module 5: Roles & Responsibilities in BIM
BIM manager duties
Coordination roles
Information delivery roles
Organizational structure
Responsibility matrix
Case Study: Team coordination in complex projects
Module 6: Information Management & Data Exchange
Data exchange formats (IFC, COBie)
Data validation
Information requirements
Model sharing
Data lifecycle
Case Study: Data interoperability challenges
Module 7: BIM Modeling Standards
Modeling guidelines
LOD (Level of Development)
Naming conventions
Quality control
Model structuring
Case Study: Standardization in multi-disciplinary models
Module 8: Clash Detection & Coordination
Clash detection tools
Coordination workflows
Issue tracking
Reporting systems
Resolution strategies
Case Study: Clash resolution in high-rise building
Module 9: 4D BIM (Time Management)
Construction sequencing
Scheduling tools
Simulation workflows
Time optimization
Risk reduction
Case Study: 4D simulation in infrastructure projects
Module 10: 5D BIM (Cost Management)
Cost estimation
Quantity take-offs
Budget control
Cost optimization
Financial reporting
Case Study: Cost savings using 5D BIM
Module 11: Digital Twin Integration
Digital twin concepts
Real-time data integration
Asset lifecycle management
Smart building systems
IoT integration
Case Study: Smart city digital twin implementation
Module 12: BIM for Sustainability
Green building standards
Energy analysis
Lifecycle assessment
Carbon footprint reduction
Sustainable materials
Case Study: LEED-certified BIM project
Module 13: Risk Management & QA/QC
Risk identification
Quality assurance processes
Model validation
Compliance checks
Audit procedures
Case Study: Risk mitigation in BIM projects
Module 14: BIM Automation & AI
Automation tools
AI-driven workflows
Scripting (Dynamo, Python)
Productivity enhancement
Future trends
Case Study: AI-based design optimization
Module 15: BEP Implementation & Project Delivery
BEP execution strategies
Monitoring and evaluation
KPIs and performance metrics
Continuous improvement
Project close-out
Case Study: Successful BIM project delivery
Training Methodology
This course employs a participatory and hands-on approach to ensure practical learning, including:
Interactive lectures and presentations.
Group discussions and brainstorming sessions.
Hands-on exercises using real-world datasets.
Role-playing and scenario-based simulations.
Analysis of case studies to bridge theory and practice.
Peer-to-peer learning and networking.
Expert-led Q&A sessions.
Continuous feedback and personalized guidance.
Register as a group from 3 participants for a Discount
Upon successful completion of this training, participants will be issued with a globally- recognized certificate.
Tailor-Made Course
We also offer tailor-made courses based on your needs.
Key Notes
a. The participant must be conversant with English.
b. Upon completion of training the participant will be issued with an Authorized Training Certificate
c. Course duration is flexible and the contents can be modified to fit any number of days.
d. The course fee includes facilitation training materials, 2 coffee breaks, buffet lunch and A Certificate upon successful completion of Training.
e. One-year post-training support Consultation and Coaching provided after the course.
f. Payment should be done at least a week before commence of the training, to FINESKILL TRAINING CENTER account, as indicated in the invoice so as to enable us prepare better for you.