
Formulation and Evaluation of Engineering Projects Course
Master every stage of engineering project formulation — from needs assessment and scope definition to cost estimation, risk analysis, and formal approval. This course equips engineers and project professionals with the structured frameworks, practical tools, and decision-making skills needed to deliver credible, investment-ready project documents.
What you will learn:
Define engineering project scope, objectives, and success criteria using structured frameworks.
Build complete Work Breakdown Structures and formal scope statements for complex projects.
Apply critical path method and resource leveling to develop realistic project schedules.
Conduct multi-dimensional feasibility studies covering technical, financial, and environmental dimensions.
Design comprehensive risk registers with qualitative and quantitative analysis techniques.
Integrate all planning outputs into a professional project document ready for stakeholder approval.
How you study in practice Formulation and Evaluation of Engineering Projects Course
How you practice Formulation and Evaluation of Engineering Projects Course
For companies that want to train their team
With Dedika for Business, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Engineering Project Formulation
Foundations of Engineering Project Formulation
Lesson 1 • Project Objectives and Success Criteria
Converts needs into measurable objectives using structured frameworks. Establishes the baseline for evaluation throughout the project.
Lesson 2 • Nature and Classification of Engineering Projects
Defines engineering projects by scope, complexity, and sector. Anchors all subsequent formulation work in a shared taxonomy.
Lesson 3 • Regulatory and Ethical Constraints in Projects
Identifies compliance requirements and professional ethics obligations that shape project design. Ensures formulation accounts for non-technical boundaries.
Lesson 4 • Problem Definition and Needs Assessment
Translates a real-world problem into a structured engineering need statement. Prevents scope creep by anchoring design to verified needs.
Lesson 5 • Stakeholder Identification and Analysis
Maps internal and external stakeholders and their influence on project decisions. Builds the foundation for requirements gathering and governance.
Chapter 2HideHide detailsSee detailsTechnical Scope Definition and Work Breakdown
Technical Scope Definition and Work Breakdown
Lesson 1 • Scope Change Control Mechanisms
Establishes formal processes for evaluating and approving scope changes. Protects project integrity against uncontrolled scope expansion.
Lesson 2 • Technical Requirements Specification
Translates objectives into functional and performance requirements. Links stakeholder needs to verifiable engineering specifications.
Lesson 3 • Work Breakdown Structure Principles
Introduces WBS logic, decomposition rules, and coding conventions. Provides the structural backbone for scheduling and cost estimation.
Lesson 4 • Scope Statement Development
Constructs a formal scope statement covering deliverables, boundaries, and exclusions. Directly reduces ambiguity in later planning phases.
Chapter 3HideHide detailsSee detailsEngineering Project Scheduling
Engineering Project Scheduling
Lesson 1 • Activity Definition and Sequencing
Decomposes work packages into schedulable activities and establishes logical dependencies. Forms the input network for all scheduling calculations.
Lesson 2 • Critical Path Method Analysis
Calculates early/late start and finish dates to identify the critical path. Enables schedule compression and float management decisions.
Lesson 3 • Resource Loading and Leveling
Assigns resources to activities and resolves over-allocation conflicts. Produces a feasible schedule aligned with resource availability.
Lesson 4 • Schedule Compression and Optimization
Applies crashing and fast-tracking to shorten the schedule within constraints. Balances time, cost, and risk trade-offs systematically.
Lesson 5 • Duration Estimation Techniques
Applies expert judgment, analogous, parametric, and three-point estimation methods. Produces defensible duration estimates with quantified uncertainty.
Chapter 4HideHide detailsSee detailsCost Estimation and Budget Formulation
Cost Estimation and Budget Formulation
Lesson 1 • Life-Cycle Cost Analysis
Extends cost analysis beyond construction to operations, maintenance, and disposal. Supports investment decisions based on total ownership cost.
Lesson 2 • Direct and Indirect Cost Components
Categorizes all cost elements including labor, materials, equipment, and overhead. Ensures complete cost coverage and prevents budget underestimation.
Lesson 3 • Cost Baseline and Budget Development
Aggregates work package estimates into a time-phased cost baseline (S-curve). Establishes the reference for earned value measurement.
Lesson 4 • Cost Estimation Methodologies
Compares order-of-magnitude, parametric, bottom-up, and vendor-quote methods. Selects the appropriate method based on project phase and data availability.
Lesson 5 • Cost Control and Forecasting
Monitors actual costs against the baseline and forecasts final project cost. Enables early corrective action before budget overruns become critical.
Chapter 5HideHide detailsSee detailsEngineering Risk Assessment and Management
Engineering Risk Assessment and Management
Lesson 1 • Risk Monitoring and Control
Establishes processes for tracking risk status and implementing responses. Integrates risk management into routine project reporting cycles.
Lesson 2 • Qualitative Risk Analysis
Prioritizes risks using probability-impact matrices and risk scoring. Focuses management attention on the highest-exposure items.
Lesson 3 • Risk Identification Techniques
Applies brainstorming, checklists, SWOT, and assumption analysis to surface project risks. Produces a comprehensive initial risk register.
Lesson 4 • Risk Response Planning
Develops avoid, transfer, mitigate, and accept strategies for prioritized risks. Assigns ownership and triggers for each response action.
Lesson 5 • Quantitative Risk Analysis
Applies Monte Carlo simulation and decision tree analysis to quantify schedule and cost risk. Produces probability distributions for project outcomes.
Chapter 6HideHide detailsSee detailsFeasibility Analysis and Project Justification
Feasibility Analysis and Project Justification
Lesson 1 • Feasibility Report Structure and Presentation
Synthesizes all feasibility dimensions into a decision-ready report with a clear recommendation. Develops professional communication skills for executive audiences.
Lesson 2 • Environmental and Social Feasibility
Assesses environmental impacts and social acceptance of the proposed project. Ensures compliance with impact assessment requirements.
Lesson 3 • Technical Feasibility Assessment
Evaluates whether available technology, materials, and expertise can deliver the project. Identifies technical gaps requiring resolution before commitment.
Lesson 4 • Organizational and Operational Feasibility
Determines whether the organization has the capacity, structure, and processes to execute and operate the project. Flags institutional readiness gaps.
Lesson 5 • Economic and Financial Feasibility
Applies NPV, IRR, payback period, and benefit-cost ratio to evaluate financial viability. Provides the quantitative basis for investment approval.
Chapter 7HideHide detailsSee detailsProject Evaluation Frameworks and Methods
Project Evaluation Frameworks and Methods
Lesson 1 • Evaluation Plan Development
Integrates all evaluation components into a structured plan with timeline, budget, and responsibilities. Produces a document ready for stakeholder approval.
Lesson 2 • Evaluation Types and Timing
Distinguishes ex-ante, mid-term, and ex-post evaluation and their distinct purposes. Aligns evaluation design with project phase and decision needs.
Lesson 3 • Performance Indicator Design
Develops SMART indicators at output, outcome, and impact levels with data sources. Ensures measurability and attribution of project results.
Lesson 4 • Data Collection and Analysis Methods
Selects quantitative and qualitative data collection tools appropriate to each indicator. Produces reliable evidence for evaluation conclusions.
Lesson 5 • Logic Models and Results Frameworks
Constructs logic models linking inputs, activities, outputs, outcomes, and impact. Provides the causal chain that guides indicator selection.
Chapter 8HideHide detailsSee detailsIntegrated Project Document and Approval Process
Integrated Project Document and Approval Process
Lesson 1 • Integrated Project Management Plan
Assembles subsidiary plans (scope, schedule, cost, risk, quality) into a unified management plan. Ensures internal consistency across all planning domains.
Lesson 2 • Project Review Gates and Approval Workflow
Designs stage-gate review criteria and the formal approval workflow for project documents. Ensures governance compliance before project execution begins.
Lesson 3 • Project Charter and Business Case
Drafts the project charter and supporting business case to authorize project initiation. Connects strategic rationale to formal project authorization.
Lesson 4 • Quality Management Planning
Establishes quality standards, assurance activities, and control checkpoints for the project. Embeds quality into the project execution framework.
Lesson 5 • Procurement and Contract Strategy
Defines make-or-buy decisions, contract types, and vendor selection criteria. Aligns procurement strategy with project risk and delivery requirements.
Your valid completion certificate
This course is for you:
Civil or mechanical engineers: ready to move beyond execution into project planning roles.
Project coordinators: seeking a rigorous framework to justify and document project decisions.
Recent engineering graduates: building the planning competencies employers expect from day one.
Public sector technical staff: responsible for preparing government infrastructure investment proposals.
Consultants and advisors: needing structured methods to formulate projects for diverse clients.
Career changers from construction or operations: transitioning into formal project management roles.
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