Generative AI and Prompt Engineering in Healthcare Training Course
Generative AI refers to technologies capable of creating new content, including text, images, and recommendations, by interpreting prompts and analyzing data.
This instructor-led live training, available online or on-site, is designed for healthcare professionals at beginner to intermediate levels who aim to leverage generative AI and prompt engineering to enhance efficiency, precision, and communication within medical settings.
Upon completing this training, participants will be able to:
- Grasp the core concepts of generative AI and prompt engineering.
- Utilize AI tools to streamline clinical, administrative, and research workflows.
- Ensure the ethical, secure, and compliant application of AI in healthcare.
- Refine prompts to achieve consistent and accurate outcomes.
Course Format
- Interactive lectures and discussions.
- Practical exercises and real-world case studies.
- Hands-on experimentation with AI tools.
Customization Options
- For a customized version of this course, please contact us to arrange your requirements.
Course Outline
Module 1 – Fundamentals of Generative AI and Prompt Engineering
- Understanding generative AI and its underlying mechanics
- Distinguishing between AI models and tools
- Core principles of prompt engineering
- Structuring and optimizing prompts for consistent results
Module 2 – Practical Applications for Medicine
- Drafting medical reports and clinical opinions
- Prompt templates for standardizing clinical documentation
- Clinical decision support
- Generating differential diagnosis suggestions and evidence-based guidelines
- Time optimization
- Supporting pre-consultation preparation and intraoperative assistance
- Patient communication
- Developing clear, empathetic post-consultation instructions
- Medical knowledge support
- Summarizing clinical guidelines, conducting quick reviews, and performing thematic searches
- Administrative management for medical offices
- Organizing schedules, reminders, and internal communications
Module 3 – Best Practices and Limitations of AI in Medicine
- Identifying common errors and strategies to avoid them
- Validating and reviewing AI-generated information
- Complementing human clinical judgment with AI capabilities
Module 4 – Ethics, Privacy, and Safe Use
- Ethical considerations of AI in healthcare
- Compliance with data protection regulations (LGPD) and confidentiality standards
- Maintaining professional responsibility in AI application
Summary and Next Steps
Requirements
- Familiarity with basic medical terminology
- Experience with clinical or administrative processes in healthcare
- Basic proficiency with digital tools
Target Audience
- Healthcare professionals
- Medical researchers
- Administrative staff in medical environments
Open Training Courses require 5+ participants.
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