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AI and Digital Health Informatics Integration Course

INR ₹2,499.00 INR ₹24,999.00Price range: INR ₹2,499.00 through INR ₹24,999.00

This program focuses on the integration of artificial intelligence and health informatics. Participants will gain expertise in using AI for health data analysis, clinical decision-making, and digital healthcare innovations, preparing for the future of AI in healthcare.

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Aim

This course trains learners to understand and apply AI within real digital health informatics ecosystems—EHR/EMR data, clinical workflows, wearable streams, imaging reports, and population health dashboards. You will learn how health data is structured, how AI models support decision-making (without replacing clinicians), how to integrate AI outputs into workflows, and how to ensure privacy, safety, and responsible deployment in clinical and public health settings.

Program Objectives

  • Understand Digital Health Systems: Learn how EHR/EMR, apps, devices, labs, and dashboards connect.
  • Work with Healthcare Data: Understand structured vs unstructured data and common quality issues.
  • AI for Clinical Support: Explore risk scoring, triage support, and decision assistance workflows.
  • Integration Thinking: Learn how AI outputs are embedded into real clinical processes.
  • Interoperability Basics: Understand standards and integration concepts used in healthcare informatics.
  • Ethics, Safety & Privacy: Learn responsible AI practices in health, including bias and validation.
  • Hands-on Outcome: Build a concept-level AI integration plan or digital health workflow as a capstone.

Program Structure

Module 1: Digital Health Informatics — The Real Ecosystem

  • Digital health components: EHR/EMR, LIS, RIS/PACS, telehealth, wearables, apps.
  • Clinical workflows: where data is created and where decisions happen.
  • Why integration matters: avoiding “AI in isolation.”
  • Common failure points: poor data, workflow mismatch, and low trust.

Module 2: Healthcare Data Types & Quality (What AI Learns From)

  • Structured data: vitals, labs, medications, diagnoses, procedures.
  • Unstructured data: clinical notes, discharge summaries, reports (NLP overview).
  • Time-series streams: ICU monitoring, wearables, remote patient monitoring (RPM).
  • Data quality issues: missing values, coding variation, bias, and leakage risks.

Module 3: AI Use Cases in Digital Health

  • Risk prediction: readmission, sepsis alerts, chronic disease progression (workflow view).
  • Triage and prioritization: decision support, not decision replacement.
  • Clinical documentation support: summarization, coding assistance (safe boundaries).
  • Population health: hotspots, risk stratification, and outreach targeting.

Module 4: Interoperability & Integration Essentials (Conceptual but Practical)

  • Why standards exist: consistent data exchange and safer integration.
  • HL7/FHIR basics (concept): what they represent and typical integration flows.
  • Terminologies overview: ICD, SNOMED, LOINC (why coding consistency matters).
  • Data pipelines: ingestion → cleaning → modeling → deployment → monitoring.

Module 5: Building AI-Enabled Clinical Workflows

  • Where AI fits: alerts, dashboards, order suggestions, escalation flags.
  • Human-in-the-loop design: making clinicians the final decision point.
  • Reducing alert fatigue: thresholds, prioritization, and explainability basics.
  • Designing for adoption: usability, trust, and clinical relevance.

Module 6: Model Validation, Safety & Performance Monitoring

  • Clinical validation vs technical accuracy: what matters in practice.
  • Bias and fairness: how models can harm underserved groups.
  • Drift monitoring: when models degrade due to changing populations or protocols.
  • Documentation: model cards, audit trails, and change management basics.

Module 7: Privacy, Security & Responsible AI in Healthcare

  • Protected health information (PHI) mindset and safe handling habits.
  • Consent, de-identification basics, and secure data sharing concepts.
  • Ethical boundaries: transparency, accountability, and explainability.
  • Regulatory awareness (overview): why compliance planning matters.

Module 8: Applied Case Labs (Integration Scenarios)

  • Case A: AI triage for emergency department flow.
  • Case B: Remote patient monitoring for diabetes/hypertension.
  • Case C: Hospital readmission risk scoring integrated into discharge workflow.
  • Case D: NLP-based clinical note summarization with safety checks.

Final Project

  • Create an AI + Digital Health Integration Blueprint for a chosen use case.
  • Include: data sources, workflow map, AI output design, validation plan, privacy safeguards, and monitoring plan.
  • Example projects: sepsis early warning dashboard, RPM workflow for cardiac patients, AI-assisted discharge planning, population health risk stratification plan.

Participant Eligibility

  • Students and professionals in Healthcare, Public Health, Biomedical, Biotechnology, Nursing, Pharmacy, or allied health
  • Health informatics professionals and hospital IT teams
  • Data/AI learners interested in healthcare applications (beginner-friendly)
  • Clinicians and administrators exploring AI-enabled workflows

Program Outcomes

  • Informatics Understanding: Know how health systems and data flows work in real settings.
  • Integration Skills: Ability to map where AI fits into clinical workflows safely.
  • Responsible Deployment Mindset: Understand validation, bias, privacy, and monitoring needs.
  • Use-Case Readiness: Ability to design an AI integration blueprint with realistic constraints.
  • Portfolio Deliverable: A complete integration blueprint you can showcase.

Program Deliverables

  • Access to e-LMS: Full access to course content, templates, and case materials.
  • Workflow Templates: Clinical workflow mapping sheet, AI output design checklist, monitoring plan template.
  • Case Exercises: Integration scenarios with decision points and safety checks.
  • Project Guidance: Mentor support for final project blueprint creation.
  • Final Assessment: Certification after assignments + capstone submission.
  • e-Certification and e-Marksheet: Digital credentials provided upon successful completion.

Future Career Prospects

  • Digital Health Informatics Associate
  • Clinical Data & AI Workflow Analyst
  • Health AI Product / Implementation Associate
  • Population Health Analytics Associate
  • Remote Patient Monitoring (RPM) Program Associate

Job Opportunities

  • Hospitals & Health Systems: Clinical informatics, analytics, and digital transformation teams.
  • Healthtech Startups: AI-enabled care platforms, telehealth products, and RPM solutions.
  • Insurance & Payers: Risk stratification, care management analytics, and utilization management.
  • Public Health Programs: Surveillance dashboards, outreach targeting, and program monitoring.
  • IT & Consulting: Healthcare integration, interoperability, and digital health implementation roles.
Category

E-LMS, E-LMS+Videos, E-LMS+Videos+Live

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Certification

  • Upon successful completion of the workshop, participants will be awarded a Certificate of Completion, validating their skills and knowledge in advanced AI ethics and regulatory frameworks. This certification can be added to your LinkedIn profile or shared with employers to demonstrate your commitment to ethical AI practices.

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