AI+ Prompt Engineer Level 1™

Kód kurzu: NPAC130

Tato část není lokalizována

Formerly known as AI+ Prompt Engineer Level 1™

Master AI Prompts: Elevate Your Engineering Skills

  • Foundational Knowledge: Covers core concepts across generative AI, machine learning, NLP, and neural networks.
  • Hands-On Learning: Delivers practical training in designing and refining effective prompts.
  • Industry-Relevant Skills: Equips learners to develop impactful AI solutions across diverse sectors.
  • Prompting Expertise: Certifies participants to craft precise, domain-specific prompts with confidence.

Odborní
certifikovaní lektoři

Mezinárodně
uznávané certifikace

Široká nabídka technických
a soft skills kurzů

Skvělý zákaznický
servis

Přizpůsobení kurzů
přesně na míru

Termíny kurzu

Počáteční
datum
Místo
konání
Forma Délka
kurzu
Jazyk Cena bez DPH
G Garantovaný kurz

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Popis kurzu

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Foundations of Artificial Intelligence (AI) and Prompt Engineering

Introduction to AI, its history, machine learning basics, deep learning, neural networks, and NLP.

Principles of Effective Prompting

Learn the essential principles of effective prompting, including giving directions, formatting responses.

Introduction to AI Tools and Models

Explore AI tools like ChatGPT, GPT-4, DALL-E 2, and specialized models, as well as understanding their practical applications.

Mastering Prompt Engineering Techniques

Focus on advanced prompting techniques such as zero-shot, few-shot, chain-of-thought, prompt chaining.

Mastering Image Model Techniques

Study the use of image models, style modifiers, image generation techniques, and practical applications.

Project-Based Learning Session

Engage in hands-on projects to apply AI concepts, select themes, design AI projects, integrate text and image models.

Ethical Considerations and Future of AI

Understand AI ethics, bias and fairness in models, privacy concerns, data security, transparency in AI.

Struktura kurzu

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Course Overview

Module 1: Foundations of Artificial Intelligence (AI) and Prompt Engineering

  • 1.1 Introduction to Artificial Intelligence Preview
  • 1.2 History of AI Preview
  • 1.3 Machine Learning Basics Preview
  • 1.4 Deep Learning and Neural Networks
  • 1.5 Natural Language Processing (NLP)
  • 1.6 Prompt Engineering Fundamentals

Module 2: Principles of Effective Prompting

  • 2.1 Introduction to the Principles of Effective PromptingPreview
  • 2.2 Giving DirectionsPreview
  • 2.3 Formatting ResponsesPreview
  • 2.4 Providing Examples
  • 2.5 Evaluating Response Quality
  • 2.6 Dividing Labor
  • 2.7 Applying The Five Principles
  • 2.8 Fixing Failing Prompts

Module 3: Introduction to AI Tools and Models

  • 3.1 Understanding AI Tools and Models Preview
  • 3.2 Deep Dive into ChatGPT Preview
  • 3.3 Exploring GPT Preview
  • 3.4 Revolutionizing Art with DALL-E
  • 3.5 Introduction to Emerging Tools using GPT
  • 3.6 Specialized AI Models
  • 3.7 Advanced AI Models
  • 3.8 Google AI Innovations
  • 3.9 Comparative Analysis of AI Tools
  • 3.10 Practical Application Scenarios
  • 3.11 Harnessing AI’s Potential

Module 4: Mastering Prompt Engineering Techniques

  • 4.1 Zero-Shot Prompting
  • 4.2 Few-Shot Prompting
  • 4.3 Chain-of-Thought Prompting
  • 4.4 Ensuring Self-Consistency in AI Responses
  • 4.5 Generate Knowledge Prompting
  • 4.6 Prompt Chaining
  • 4.7 Tree of Thoughts: Exploring Multiple Solutions
  • 4.8 Retrieval Augmented Generation
  • 4.9 Graph Prompting and Advanced Data Interpretation
  • 4.10 Application in Practice: Real-Life Scenarios
  • 4.11 Practical Exercises

Module 5: Mastering Image Model Techniques

  • 5.1 Introduction to Image Models
  • 5.2 Understanding Image Generation
  • 5.3 Style Modifiers and Quality Boosters in Image Generation
  • 5.4 Advanced Prompt Engineering in AI Image Generation
  • 5.5 Prompt Rewriting for Image Models
  • 5.6 Image Modification Techniques: Inpainting and Outpainting
  • 5.7 Realistic Image Generation
  • 5.8 Realistic Models and Consistent Characters
  • 5.9 Practical Application of Image Model Techniques
  • 5.10 Ethical and Legal Dimensions of AI-Generated Images

Module 6: Project-Based Learning Session

  • 6.1 Introduction to Project-Based Learning in AI
  • 6.2 Selecting a Project Theme
  • 6.3 Project Planning and Design in AI
  • 6.4 AI Implementation and Prompt Engineering
  • 6.5 Integrating Text and Image Models
  • 6.6 Evaluation and Integration in AI Projects
  • 6.7 Engaging and Effective Project Presentation
  • 6.8 Guided Project Example
  • 6.9 Sample Projects and Evaluation Framework

Module 7: Ethical Considerations and Future of AI

  • 7.1 Introduction to AI Ethics
  • 7.2 Bias and Fairness in AI Models
  • 7.3 Privacy and Data Security in AI
  • 7.4 The Imperative for Transparency in AI Operations
  • 7.5 Sustainable AI Development: An Imperative for the Future
  • 7.6 Ethical Scenario Analysis in AI: Navigating the Complex Landscape
  • 7.7 Navigating the Complex Landscape of AI Regulations and Governance
  • 7.8 Navigating the Regulatory Landscape: A Guide for AI Practitioners
  • 7.9 Ethical Frameworks and Guidelines in AI Development
  • 7.10 Future of AI Governance and Responsible Innovation

Optional Module: AI Agents for Prompt Engineering

  • 1. What Are AI Agents
  • 2. Applications and Trends of AI Agents for Prompt Engineers
  • 3. How Does an AI Agent Work
  • 4. Core Characteristics of AI Agents
  • 5. Importance of AI Agents
  • 6. Types of AI Agents

Předpokládané znalosti

Tato část není lokalizována

  • A basic awareness of AI fundamentals and its applications; no technical skills required.
  • A willingness to think creatively and apply AI tools effectively in practice.

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