
3D Modelling and Printing with Artificial Intelligence Course
Master the full 3D design-to-print pipeline by combining professional modeling techniques with cutting-edge AI tools. From generating meshes with text prompts to optimizing structures for real-world strength, this course covers every stage. Build a portfolio of print-ready projects that demonstrate both technical precision and AI-enhanced creativity.
What you will learn:
Generate print-ready 3D models using AI text-to-3D and image-to-3D tools.
Apply topology optimization and generative design to create lightweight, structurally sound parts.
Configure slicer software with optimized supports, infill patterns, and material-specific settings.
Select and process materials — from engineering filaments to resins — based on functional requirements.
Clean, retopologize, and repair AI-generated meshes to meet professional print quality standards.
Build semi-automated design pipelines that connect AI generation, simulation, repair, and slicing.
How you study in practice 3D Modelling and Printing with Artificial Intelligence Course
How you practice 3D Modelling and Printing with Artificial Intelligence 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 • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of 3D Modeling and Printing
Foundations of 3D Modeling and Printing
Lesson 1 • Setting Up Your Modeling Environment
Guides students through software installation, viewport navigation, and unit configuration. Ensures a functional workspace before modeling begins.
Lesson 2 • Overview of Additive Manufacturing
Explains how 3D printers build objects layer by layer. Connects printing physics to design decisions made in modeling software.
Lesson 3 • 3D File Formats and Data Standards
Introduces STL, OBJ, 3MF, and STEP formats and their use cases. Prepares students to export models correctly for downstream tools.
Lesson 4 • Introduction to 3D Modeling Concepts
Covers geometric primitives, coordinate systems, and mesh topology. Establishes vocabulary used throughout the course.
Lesson 5 • Hardware Components of a 3D Printer
Identifies key mechanical and electronic subsystems of desktop printers. Grounds students in physical constraints that affect model design.
Chapter 2HideHide detailsSee detailsCore 3D Modeling Techniques
Core 3D Modeling Techniques
Lesson 1 • Boolean and Constructive Solid Geometry
Applies union, difference, and intersection operations to combine shapes. Enables rapid creation of complex mechanical parts.
Lesson 2 • Parametric and Procedural Modeling
Uses constraint-based and node-driven tools to create editable, dimension-accurate models. Supports engineering and product design workflows.
Lesson 3 • Subdivision and Smoothing Workflows
Introduces subdivision surface modifiers to achieve smooth, high-resolution forms. Connects low-poly control cages to final print geometry.
Lesson 4 • Polygon Modeling Fundamentals
Teaches extrusion, loop cuts, and face manipulation to build organic and hard-surface shapes. Forms the primary modeling skill set for the course.
Lesson 5 • Topology Optimization for Printing
Teaches edge flow, polygon density, and wall thickness rules specific to additive manufacturing. Prevents common print failures caused by poor geometry.
Chapter 3HideHide detailsSee detailsAI-Assisted 3D Model Generation
AI-Assisted 3D Model Generation
Lesson 1 • Introduction to Generative AI for 3D
Surveys the landscape of AI tools that produce 3D geometry from prompts or images. Positions AI as a creative accelerator within the modeling pipeline.
Lesson 2 • Cleaning and Retopologizing AI Meshes
Covers manual and automated retopology workflows to convert raw AI output into clean, print-ready models. Bridges AI generation and professional quality standards.
Lesson 3 • Prompt Engineering for 3D Generation
Develops skills in writing effective prompts that yield usable geometry. Reduces iteration cycles by improving prompt specificity and structure.
Lesson 4 • Evaluating AI-Generated Mesh Quality
Applies mesh analysis tools to assess AI output for topology errors and print viability. Builds critical judgment before committing to cleanup work.
Lesson 5 • Integrating AI Output into Manual Workflows
Combines AI-generated base meshes with hand-modeled detail and parametric refinement. Produces hybrid models that exceed pure AI quality.
Chapter 4HideHide detailsSee detailsMaterials Science for 3D Printing
Materials Science for 3D Printing
Lesson 1 • Thermoplastic Filament Properties
Compares PLA, ABS, PETG, TPU, and engineering-grade filaments by strength, flexibility, and printability. Guides material selection for FDM workflows.
Lesson 2 • Resin and Photopolymer Materials
Covers standard, ABS-like, flexible, and castable resins for SLA and MSLA printing. Connects resin chemistry to surface finish and post-cure requirements.
Lesson 3 • Post-Processing and Surface Finishing
Applies sanding, priming, chemical smoothing, and painting techniques to improve print aesthetics and function. Completes the production workflow from print to finished part.
Lesson 4 • Material Selection with AI Assistance
Uses AI recommendation tools to match material properties to functional requirements. Reduces trial-and-error by leveraging data-driven material databases.
Lesson 5 • Composite and Filled Filaments
Examines carbon fiber, glass fiber, wood, and metal-filled filaments and their hardware requirements. Expands design possibilities for structural and aesthetic applications.
Chapter 5HideHide detailsSee detailsSlicing Software and Print Preparation
Slicing Software and Print Preparation
Lesson 1 • Slicer Software Fundamentals
Introduces slicer interface, model import, and basic print profile selection. Establishes the link between model geometry and G-code output.
Lesson 2 • Layer Height, Speed, and Temperature
Tunes layer height, print speed, and nozzle temperature for quality and efficiency. Connects slicer parameters to physical print outcomes.
Lesson 3 • Support Structures and Overhangs
Explains overhang angle thresholds and support generation strategies. Reduces post-processing time through intelligent support placement.
Lesson 4 • G-Code Review and Custom Commands
Reads and edits G-code to insert custom start, end, and pause sequences. Gives students direct control over printer behavior beyond slicer defaults.
Lesson 5 • Infill Patterns and Density Settings
Compares infill geometries and their effects on strength, weight, and print time. Enables material-efficient designs without sacrificing structural integrity.
Chapter 6HideHide detailsSee detailsAI-Powered Design Optimization
AI-Powered Design Optimization
Lesson 1 • Printability Constraints in Optimization
Incorporates overhang, minimum feature size, and build direction constraints into optimization runs. Ensures AI-optimized geometry is manufacturable without excessive support.
Lesson 2 • Generative Design Workflows
Uses AI generative design tools to explore multiple design alternatives simultaneously. Accelerates engineering design by automating constraint-driven geometry creation.
Lesson 3 • Principles of Topology Optimization
Explains how optimization algorithms redistribute material under load constraints. Provides the theoretical basis for AI-assisted structural design.
Lesson 4 • Lattice and Infill Structure Generation
Creates internal lattice structures using AI tools to reduce weight while maintaining strength. Applies directly to functional part design for additive manufacturing.
Lesson 5 • Simulation-Driven Design Validation
Runs finite element analysis to verify AI-optimized designs before printing. Prevents costly print failures by catching structural weaknesses early.
Chapter 7HideHide detailsSee detailsAdvanced AI Integration in the Design Pipeline
Advanced AI Integration in the Design Pipeline
Lesson 1 • AI-Driven Print Failure Prediction
Applies machine learning models trained on print data to predict and prevent common failures. Reduces material waste and reprints through proactive quality control.
Lesson 2 • Automated Mesh Repair with AI
Uses AI-powered repair pipelines to fix holes, inverted normals, and self-intersections automatically. Reduces manual cleanup time in high-volume production contexts.
Lesson 3 • Scripting and Automation in Modeling Tools
Introduces Python and built-in scripting APIs to automate repetitive modeling and export tasks. Scales individual workflows to batch production efficiency.
Lesson 4 • Building a Semi-Automated Design Pipeline
Connects AI generation, optimization, repair, and slicing into a unified automated workflow. Demonstrates end-to-end pipeline construction for professional production environments.
Lesson 5 • AI Style Transfer for 3D Models
Applies neural style transfer techniques to impose surface texture and aesthetic styles onto 3D geometry. Enables rapid visual prototyping and branded product design.
Chapter 8HideHide detailsSee detailsCapstone Projects and Professional Practice
Capstone Projects and Professional Practice
Lesson 1 • Portfolio Documentation and Presentation
Structures project documentation, renders, and process narratives into a professional portfolio. Prepares students to communicate design decisions to clients and employers.
Lesson 2 • Full Model Development and Optimization
Builds the selected concept into a complete, optimized, print-ready model using all course techniques. Integrates manual modeling, AI assistance, and simulation validation.
Lesson 3 • Printing, Testing, and Iteration
Executes physical prints, tests against design criteria, and iterates based on results. Closes the design loop between digital model and physical prototype.
Lesson 4 • Concept Development with AI Tools
Uses AI generation and generative design to rapidly explore concept variations. Accelerates ideation while maintaining alignment with the design brief.
Lesson 5 • Defining a Design Brief and Requirements
Translates client or stakeholder needs into measurable design specifications. Establishes a structured starting point for every professional project.
Your valid completion certificate
This course is for you:
Product designers: ready to accelerate prototyping with AI-assisted workflows.
Hobbyist makers: wanting to move beyond downloaded files to original designs.
Mechanical engineers: looking to integrate generative design into physical production.
Graphic designers: transitioning into three-dimensional product and object creation.
Entrepreneurs: developing physical products without a dedicated engineering team.
Educators and makers: building hands-on STEM curricula around modern fabrication tools.
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