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Planning Engineer Course
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Planning Engineer Course

Master the full planning engineering toolkit — from WBS development and CPM scheduling to earned value management, delay analysis, and quantitative risk analysis. This course gives you the technical depth and practical skills employers expect from a competent planning engineer. Build schedules, control baselines, and defend claims with confidence.

Dedika for students

What your team will master:

This course covers every core competency a planning engineer needs to perform at a professional level. You will learn how to develop Work Breakdown Structures, build network schedules using Critical Path Method, and load resources and costs into your schedule. You will apply Earned Value Management to track performance and forecast project completion. The course also trains you to analyze delays using recognized methodologies and prepare defensible delay reports. Advanced topics include Monte Carlo simulation, schedule risk registers, and contract awareness. You will finish with the skills to manage baselines, control changes, and communicate schedule data clearly to any stakeholder.

How your team learns in practice Planning Engineer Course

How your team practices Planning Engineer Course

Professionals from these companies study at Dedika

ActemiumFR
Nunner LogisticsNL
GT Constructora GeotécnicaCR
Sydel StarBR
Metrô de São PauloBR
Aguas AndinasCL
DSMIN
MeridianbetRS
CDHCN

Course Content

8 Chapters • 36 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Planning Engineering

  • Lesson 1 • Planning Standards and Frameworks

    Surveys industry-recognized planning frameworks and contractual planning requirements. Students can identify applicable standards for a given project context.

  • Lesson 2 • Role of the Planning Engineer

    Defines the planning engineer's position within project organizations and key deliverables. Connects professional identity to daily responsibilities and stakeholder expectations.

  • Lesson 3 • Core Planning Terminology

    Introduces essential vocabulary including activities, milestones, float, and critical path. Ensures consistent language use across all subsequent scheduling work.

  • Lesson 4 • Project Lifecycle and Phases

    Maps standard project phases from initiation through closeout and their planning implications. Provides the structural framework used throughout the course.

Chapter 2See details

Work Breakdown Structure Development

  • Lesson 1 • WBS Quality and Validation

    Applies completeness and consistency checks to ensure the WBS fully represents project scope. Students identify and correct common WBS errors before scheduling begins.

  • Lesson 2 • Developing the WBS

    Guides step-by-step construction of a WBS from project scope documents. Students apply decomposition rules to avoid scope gaps and overlaps.

  • Lesson 3 • Activity Definition and Sequencing

    Converts WBS work packages into schedulable activities with defined predecessors and successors. Establishes the activity list used in all subsequent scheduling chapters.

  • Lesson 4 • WBS Principles and Purpose

    Explains the hierarchical decomposition concept and why WBS drives cost, schedule, and scope control. Links WBS design decisions to downstream planning accuracy.

Chapter 3See details

Schedule Development Techniques

  • Lesson 1 • Duration Estimating Methods

    Covers analogous, parametric, three-point, and expert-judgment estimating techniques. Students select and apply the appropriate method based on available project data.

  • Lesson 2 • Schedule Quality and Logic Checks

    Identifies open ends, redundant logic, and constraint misuse that degrade schedule integrity. Students apply a structured review checklist before baseline submission.

  • Lesson 3 • Critical Path Method Calculations

    Performs forward and backward pass calculations to determine project duration and float. Mastery of manual CPM ensures correct interpretation of software outputs.

  • Lesson 4 • Network Diagramming Methods

    Introduces Activity-on-Node and Activity-on-Arrow diagramming conventions. Students construct small networks by hand to internalize logic before using software.

  • Lesson 5 • Schedule Compression Techniques

    Applies fast-tracking and crashing to shorten schedule duration while managing trade-offs. Students evaluate cost and risk impacts of each compression strategy.

Chapter 4See details

Resource Planning and Optimization

  • Lesson 1 • Resource Identification and Coding

    Defines resource types, units, and coding structures used in resource-loaded schedules. Proper coding enables accurate reporting and cost integration later.

  • Lesson 2 • Resource Leveling and Smoothing

    Resolves overallocations through leveling algorithms and manual smoothing techniques. Students balance resource demand against availability without extending the critical path unnecessarily.

  • Lesson 3 • Staffing Plans and Mobilization Curves

    Translates resource histograms into staffing plans and S-curve mobilization profiles. Students use these outputs to support procurement and site logistics planning.

  • Lesson 4 • Resource Loading the Schedule

    Assigns resource quantities to activities using effort-driven and fixed-duration methods. Students build a fully resource-loaded schedule from a prepared activity list.

Chapter 5See details

Baseline Establishment and Control

  • Lesson 1 • Progress Measurement Methods

    Covers weighted milestones, percent complete rules, and physical measurement techniques. Accurate progress data is the foundation of reliable schedule performance reporting.

  • Lesson 2 • Variance Analysis and Corrective Action

    Analyzes schedule variances to identify root causes and develop corrective action plans. Students produce a variance narrative suitable for a project status report.

  • Lesson 3 • Baseline Approval Process

    Outlines the review, approval, and formal acceptance steps required to establish a project baseline. Students understand who authorizes the baseline and what documentation is required.

  • Lesson 4 • Schedule Update Procedures

    Defines the data date, actual start/finish entry, and remaining duration update workflow. Students perform a complete schedule update cycle on a sample project.

  • Lesson 5 • Schedule Change Control

    Establishes a structured process for evaluating, approving, and incorporating schedule changes. Students distinguish between revisions, updates, and rebaselines.

Chapter 6See details

Earned Value Management for Planners

  • Lesson 1 • EVM Fundamentals

    Defines the three EVM data streams: planned value, earned value, and actual cost. Students understand how EVM connects schedule performance to financial outcomes.

  • Lesson 2 • EVM Reporting and Integration

    Integrates EVM data into schedule status reports and management dashboards. Students produce an EVM report aligned with contractual reporting requirements.

  • Lesson 3 • Forecasting Completion

    Applies EAC, ETC, and TCPI formulas to forecast final cost and schedule at completion. Students select the appropriate forecasting formula based on project conditions.

  • Lesson 4 • EVM Indices and Variances

    Calculates SPI, CPI, SV, and CV from project data and interprets their meaning. Students diagnose project health using index thresholds and trend analysis.

Chapter 7See details

Delay Analysis and Claims Preparation

  • Lesson 1 • Delay Analysis Report Writing

    Structures and writes a professional delay analysis report for contractual submission. Students apply clear, factual language and logical presentation to support claims.

  • Lesson 2 • Delay Quantification and Documentation

    Quantifies critical delay impacts and links them to causation evidence. Students compile a structured delay event register with supporting documentation.

  • Lesson 3 • Types of Delays and Entitlement

    Classifies delays as excusable, compensable, non-excusable, and concurrent. Students determine contractor entitlement to time and cost relief for each delay type.

  • Lesson 4 • As-Built Schedule Reconstruction

    Reconstructs the as-built schedule from site records, daily reports, and correspondence. Accurate as-built data is essential for all retrospective delay analysis methods.

  • Lesson 5 • Delay Analysis Methodologies

    Compares impacted as-planned, time impact analysis, windows analysis, and as-built CPM methods. Students select the appropriate methodology based on available records and contract requirements.

Chapter 8See details

Advanced Schedule Risk Analysis

  • Lesson 1 • Risk Mitigation and Schedule Contingency

    Develops risk response plans and calculates schedule contingency from simulation outputs. Students allocate contingency to specific risk drivers rather than applying a blanket buffer.

  • Lesson 2 • Qualitative Risk Assessment

    Prioritizes schedule risks using probability-impact matrices and risk scoring. Students produce a ranked risk list to focus quantitative analysis on high-priority items.

  • Lesson 3 • Risk-Informed Schedule Reporting

    Presents probabilistic schedule results to project leadership and clients in accessible formats. Students tailor risk communication to technical and non-technical audiences.

  • Lesson 4 • Schedule Risk Identification

    Identifies schedule-specific risks using risk registers, interviews, and historical data. Students populate a risk register with probability, impact, and schedule linkage for each risk.

  • Lesson 5 • Monte Carlo Simulation Fundamentals

    Explains Monte Carlo simulation inputs, iterations, and output distributions for schedule analysis. Students interpret P50, P80, and P90 completion dates from simulation results.

Certification

Your valid completion certificate

This course is for you:

  • Junior site engineer: ready to specialize and move into a planning-focused position.

  • Project coordinator: managing timelines informally and wanting a rigorous technical framework.

  • Construction manager: seeking deeper scheduling knowledge to lead planning teams effectively.

  • Recent engineering graduate: building job-ready skills before entering a competitive project environment.

  • Career changer from operations: bringing field experience and adding formal planning credentials.

  • Freelance project consultant: expanding service offerings to include schedule control and delay analysis.

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