AI+ Medical Assistant™

Tijdsduur

AI+ Medical Assistant™

OC ICT
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Opleiderscore: starstarstarstarstar_border 8,2 OC ICT heeft een gemiddelde beoordeling van 8,2 (uit 13 ervaringen)

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OC ICT biedt haar producten standaard aan in de volgende regio's: Apeldoorn, Utrecht

Beschrijving

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Revolutionize Healthcare Support with AI-Powered Medical Assistance

  • Patient Interaction Excellence: Learn how AI enhances patient communication, appointment scheduling, and follow-up care to improve the patient experience.
  • Clinical Workflow Efficiency: Master AI tools for streamlining patient intake, medical record management, and lab result analysis to optimize clinical operations.
  • Data-Driven Decision Support: Gain expertise in using AI to assist healthcare providers with accurate diagnostics, treatment suggestions, and patient monitoring.
  • Enhanced Medical Administration: Prepare to support healthcare teams with AI-driven administrative tasks, reducing errors, improving accuracy, and …

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TRAININGEN VIRTUEEL en individueel volgen? Bel ons voor (gratis) advies 030 7370799

Revolutionize Healthcare Support with AI-Powered Medical Assistance

  • Patient Interaction Excellence: Learn how AI enhances patient communication, appointment scheduling, and follow-up care to improve the patient experience.
  • Clinical Workflow Efficiency: Master AI tools for streamlining patient intake, medical record management, and lab result analysis to optimize clinical operations.
  • Data-Driven Decision Support: Gain expertise in using AI to assist healthcare providers with accurate diagnostics, treatment suggestions, and patient monitoring.
  • Enhanced Medical Administration: Prepare to support healthcare teams with AI-driven administrative tasks, reducing errors, improving accuracy, and enabling faster decision-making.
Module 1: Fundamentals of AI for Medical Assistants
  • 1.1 Understanding AI and Its Healthcare Applications
  • 1.2 The Role of AI in Medical Assistance
  • 1.3 Case Studies
  • 1.4 Hands-on Session: Functionality Survey and Stepwise Analysis of the Eka.care Patient-Side Application
Module 2: Data Literacy for Medical Assistants
  • 2.1 Healthcare Data Types and Management
  • 2.2 Using Data Effectively in AI
  • 2.3 Case Studies
  • 2.4 Hands-On Session: Structured vs. Unstructured Data in Healthcare: A Practical Study Using Eka.Care Patient Health Record System
Module 3: AI in Patient Care Optimization
  • 3.1 Enhancing Patient Interactions with AI
  • 3.2 Predictive Analytics and Workflow Management
  • 3.3 Case Studies
  • 3.4 Hands-On Session: Eka.care in Action: Appointment Management, Smart Reminders & Tele-Consult Dashboards
Module 4: NLP and Generative AI in Medical Documentation
  • 4.1 Foundations of NLP for Medical Assistants
  • 4.2 Practical Applications and Risks
  • 4.3 Case Studies
  • 4.4 Hands-On Simulation Exercise
  • 4.5 Hands-On Session: Automating Clinical Documentation Using Eka.care: Notes, Summaries, and Communication Workflows
Module 5: AI in Diagnostics and Screening
  • 5.1 Diagnostic Support Tools
  • 5.2 Real-World Applications and Simulation
  • 5.3 Use Cases
  • 5.4 Hands-On: AI-Powered Detection of Common Health Conditions: Review and Analysis of AI-Suggested Diagnostic Insights using Eka Care
Module 6: Ethics, Bias, and Regulation in AI for Healthcare
  • 6.1 Recognizing and Addressing Bias in AI
  • 6.2 Legal, Ethical, and Compliance Frameworks
  • 6.3 Hands-On Exercise: Analyzing and Visualizing Bias in Artificial Intelligence Systems — Exploring Racial, Socioeconomic, and Demographic Disparities using Google’s What-If Tool
Module 7: Evaluating and Implementing AI Tools
  • 7.1 Selecting and Planning for AI Adoption
  • 7.2 Best Practices and Stakeholder Engagement
  • 7.3 Case Study: Procurement and Early Deployment of AI Tools for Chest Diagnostics in a National Health Service Setting
  • 7.4 Hands-On Simulation Exercise: Recognizing Red Flags in Vendor Solutions for AI in Medical Assistant
  • 7.5 Hands-On Exercises: Evaluating the Relevance and Effectiveness of AI Models using the Zoho Analytics
Module 8: Cybersecurity and Emerging Trends in AI
  • 8.1 Cybersecurity Risks and Protection
  • 8.2 Future Trends and Preparing for Innovation
  • 8.3 Case Studies: EY’s Strategic Transformation: Adapting to Emerging AI Technologies
  • 8.4 Hands-On Exercises: Common Cybersecurity Threats in AI-Enabled Healthcare: A Hands-On Exploration Using Google Sheets
Tools you will explore
  • TensorFlow
  • Keras
  • Python
  • Natural Language Processing (NLP) Tools
  • SQL
  • Matplotlib
  • Power BI
  • Healthcare Data Integration Tools
  • Electronic Health Record (EHR) Systems
  • Patient Scheduling and Coordination Platforms
  • AI-Powered Diagnostic Tools
  • Medical Imaging Analysis Tools

Online proctored exam included, with one free retake.
Exam format: 50 questions, 70% passing, 90 minutes, online proctored exam

Access to all materials and exams is provided for 365 days after delivery.

Instructor-led OR Self-paced course + Official exam + Digital badge
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