Robotic Surgery and Tele-Medicine Systems (M.Sc.)

Engineering the Future of Surgery: Robotic Surgery and Tele-Medicine Systems Your Guide to Mastering Medical Robotics at Nexier University Welcome to the cutting edge of medical engineering. I am Prof. Dr. Rishabh Arora. As a specialist in mastering the engineering and implementation of robotic surgery and tele-medicine systems, I lead the master's students in the Robotic Surgery and Tele-Medicine Systems (M.Sc.) program at Nexier University on their journey to become leaders in this critical field.

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Level
Master
Learning model
Professor + Mentor
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NXAcademic
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The program

Ideas engineered for the real world

A rigorous academic core, paired with practical production judgment.

01

Academic focus

Mastering the Engineering and Implementation of Robotic Surgery and Tele-Medicine Systems; Expertise in Medical Robotics, Haptics, Remote Communication Systems, and Healthcare Systems Integration.

02

Practical focus

Medical Robotics, Control Systems Engineering, Telecommunications, Systems Integration, Medical Device Regulation, Project Management, Leadership in Medical Technology.

After this programme

Success journey, careers and practice

Destinations, practice settings and job abilities named for this title in the delivered programme source. From graduation onwards where the source names that path.

Success journey

  • Medical Robotics Engineer for a medical device company

  • Tele-Medicine Systems Architect for a healthcare technology company

  • Control Systems Engineer for a medical robotics firm

  • Project Manager for a healthcare IT project

Career opportunities

  • Surgical Robotics Engineer for a medical device company

  • Tele-Medicine Systems Architect for a healthcare technology company

  • Haptics Engineer for a research institution

  • Healthcare Systems Integrator for a hospital network

Jobs and projects

  • Advanced analytical and problem-solving skills for medical technology challenges

  • Strategic thinking and design for robotic surgery and telemedicine systems

  • Effective communication and leadership for healthcare innovation

Copied from the delivered professor and mentor rows for this title.

This programme

What you study, and what it builds

Gains and skills named for this title, listed as a reader would scan them.

  • What you gain

    • Mastering the practical application of medical robotics and control systems engineering. Gaining expertise in telecommunications and systems integration. Developing a deep understanding of medical device regulation and project management. Cultivating a commitment to building a more intelligent and patient-centric healthcare system.
  • Skills you build

    • Mastering the engineering and implementation of robotic surgery and tele-medicine systems. Gaining expertise in medical robotics, haptics, and remote communication systems. Developing strategic thinking for healthcare systems integration and advanced medical technology. Cultivating an interdisciplinary approach, integrating robotics, AI, and medical science.
Listed courses

Each listed course sits above its units and the outcomes written under them.

Robotic Surgery and Tele-Medicine Systems (M.Sc.)

  1. 01Medical Robotics and Control Systems
    1. FoundationsFoundations of Medical Robotics and Control Systems

      The learner can master the practical application of medical robotics and control systems engineering, as applied to Medical Robotics and Control Systems.

      The learner can gain expertise in telecommunications and systems integration, as applied to Medical Robotics and Control Systems.

    2. MethodsMethods in Medical Robotics and Control Systems

      The learner can develop a deep understanding of medical device regulation and project management, as applied to Medical Robotics and Control Systems.

      The learner can cultivating a commitment to building a more intelligent and patient-centric healthcare system, as applied to Medical Robotics and Control Systems.

    3. ApplicationApplication of Medical Robotics and Control Systems

      The learner can master the engineering and implementation of robotic surgery and tele-medicine systems, as applied to Medical Robotics and Control Systems.

      The learner can gain expertise in medical robotics, haptics, and remote communication systems, as applied to Medical Robotics and Control Systems.

  2. 02Telecommunications for Healthcare
    1. FoundationsFoundations of Telecommunications for Healthcare

      The learner can develop strategic thinking for healthcare systems integration and advanced medical technology, as applied to Telecommunications for Healthcare.

      The learner can cultivating an interdisciplinary approach, integrating robotics, AI, and medical science, as applied to Telecommunications for Healthcare.

    2. MethodsMethods in Telecommunications for Healthcare

      The learner can apply a method from Telecommunications for Healthcare to a documented case.

      The learner can select an appropriate method from Telecommunications for Healthcare for a stated problem.

    3. ApplicationApplication of Telecommunications for Healthcare

      The learner can evaluate a practice of Telecommunications for Healthcare against a stated criterion.

      The learner can transfer Telecommunications for Healthcare to a new documented context.

  3. 03Systems Integration in Medical Technology
    1. FoundationsFoundations of Systems Integration in Medical Technology

      The learner can explain the core terms of Systems Integration in Medical Technology.

      The learner can distinguish related ideas inside Systems Integration in Medical Technology.

    2. MethodsMethods in Systems Integration in Medical Technology

      The learner can apply a method from Systems Integration in Medical Technology to a documented case.

      The learner can select an appropriate method from Systems Integration in Medical Technology for a stated problem.

    3. ApplicationApplication of Systems Integration in Medical Technology

      The learner can evaluate a practice of Systems Integration in Medical Technology against a stated criterion.

      The learner can transfer Systems Integration in Medical Technology to a new documented context.

  4. 04Medical Device Regulation
    1. FoundationsFoundations of Medical Device Regulation

      The learner can explain the core terms of Medical Device Regulation.

      The learner can distinguish related ideas inside Medical Device Regulation.

    2. MethodsMethods in Medical Device Regulation

      The learner can apply a method from Medical Device Regulation to a documented case.

      The learner can select an appropriate method from Medical Device Regulation for a stated problem.

    3. ApplicationApplication of Medical Device Regulation

      The learner can evaluate a practice of Medical Device Regulation against a stated criterion.

      The learner can transfer Medical Device Regulation to a new documented context.

How teaching is described

Dual guidance

Two intelligences. One coherent journey.

Research leadership

My academic focus is on the comprehensive application of robotics and tele-presence to revolutionize medical practice. I specialize in mastering the engineering and implementation of robotic surgery and tele-medicine systems, with expertise in medical robotics, haptics, remote communication systems, and healthcare systems integration. My work seamlessly integrates robotics, AI, and medical science to create a holistic understanding of how technology can enhance surgical precision, expand access to care, and transform healthcare delivery. I am widely recognized for my contributions, with publications like "AI-Driven Haptic Feedback for Enhanced Tele-Surgery" and "Blockchain for Secure Medical Tele-Consultation Networks" listed on these platforms. I hold prestigious memberships as a "Director of Surgical Robotics R&D" at Intuitive Surgical (or a equivalent) and a "Keynote Speaker" at the IEEE International Conference on Robotics and Automation. My thought leadership is evident through my advanced research on autonomous surgical tools, secure remote healthcare platforms, and the ethical implications of tele-presence medicine, frequently featured in publications like Medical Robotics & Computer Assisted Surgery or IEEE Transactions on Biomedical Engineering.

Applied mentorship

My expertise lies in the practical application of engineering principles to the challenges of robotic surgery and tele-medicine. I specialize in medical robotics, control systems engineering, and telecommunications. I have a deep understanding of systems integration and medical device regulation, and I am committed to fostering project management and leadership in medical technology. My work is dedicated to helping my students to design and implement medical solutions that are not only efficient but also effective and ethical. My work is dedicated to helping my students to understand not just the theory, but also the practice of medical technology. My publications, such as the technical manual on "Control Systems Design for Minimally Invasive Surgical Robots" and the research paper on "Telecommunications Protocols for Real-Time Remote Surgery," are a testament to my commitment to research that is both intellectually rigorous and practically relevant. I am here to help you become a skilled and effective medical engineer, a true architect of a more intelligent and patient-centric healthcare world.

Research & intelligence

A living field, not a static syllabus

Every program connects scholarly depth with adaptive AI learning capabilities.

R / 01

Professor research lens

My research is focused on the strategic application of robotics and tele-presence in healthcare:

Book: "Surgical Frontiers: Robotic Surgery and Tele-Medicine Systems." Bu kitap, robotik cerrahi ve tele-tıp sistemlerinin mühendisliğini ve uygulamasını öğrenmek için ileri düzeyde bilgiler sunar. Tıbbi robotik, haptik, uzaktan iletişim sistemleri ve sağlık sistemleri entegrasyonunu kapsar.

Peer-Reviewed Journal Article: "AI-Powered Medical Robotics and Tele-Medicine Systems." (Journal of Digital Surgery) Bu makale, yapay zeka destekli robotik cerrahi ve tele-tıp sistemlerinin mühendisliği ve uygulanması üzerine çığır açan araştırmaları sunar. Cerrahi planlama ve rehberlik için yeni yapay zeka algoritmalarını, uzaktan kontrol için gelişmiş haptik arayüzleri ve küresel sağlık hizmeti sunumu için güvenli iletişim protokollerini detaylandırır.

Article: "AI-Driven Haptic Feedback for Enhanced Tele-Surgery: Restoring Tactile Sensation in Remote Operations." Bu makale, tele-cerrahide gelişmiş haptik geri bildirim sistemlerinin uygulanmasını detaylandırır. Yapay zeka algoritmalarının, hastada çalışan robotik aletlerden gelen hassas dokunsal duyumları uzaktaki cerrah için gerçekçi kuvvet geri bildirimine dönüştürebileceğini inceler.

Blog Post (Current Academic Topic): "The Rise of Micro-Robots in Medicine: Navigating the Body with Precision and Autonomy." Bu blog yazısı, minimal invaziv cerrahi prosedürler, hedeflenmiş ilaç dağıtımı ve dahili teşhis için tasarlanmış mikro-robotların en son gelişmelerini akademik olarak inceler. Minyatürleştirilmelerini, insan vücudu içindeki gelişmiş navigasyon yeteneklerini ve yapay zeka destekli özerkliği tartışır.

Blog Post (Controversial Topic): "The Autonomous Robot Surgeon: When AI Chooses to Operate Without Human Hands, Who is Responsible for the Scalpel? The Ethical Nightmare of Robot Autonomy in Life-Critical Procedures." Bu makale, yapay zeka destekli robotik cerrahların karmaşık tıbbi prosedürleri artan özerklikle gerçekleştirdiği, insan kontrolüne olan ihtiyacı potansiyel olarak azaltan veya ortadan kaldıran son derece tartışmalı geleceği provokatif bir şekilde tartışır. Sağlık hizmetlerinde algoritmik hatalardan kimin sorumlu olduğuna dair derin ve rahatsız edici etik soruları gündeme getirir.

R / 02

Mentor practice lens

My publications are focused on the practical challenges of engineering advanced medical systems:

Technical Manual: "Control Systems Design for Minimally Invasive Surgical Robots." Minimal invaziv cerrahi robotları için kontrol sistemleri tasarımının ilke ve uygulamalarına yönelik pratik bir kılavuzdur.

Research Paper: "Telecommunications Protocols for Real-Time Remote Surgery." Gerçek zamanlı uzaktan cerrahi için kullanılabilecek farklı telekomünikasyon protokollerinin bir analizidir.

Policy Brief: "Regulatory Pathways for AI-Powered Medical Devices in Global Markets." Yapay zeka destekli tıbbi cihazlar için küresel pazarlardaki temel düzenleyici yolları özetleyen bir politika özetidir.

Adaptive capability

Professor superpower

I possess the "Tele-Surgical Dexterity Optimizer," a GAF-powered superpower that allows me to foresee and engineer the success of remote surgical procedures. When a student designs a new tele-surgical instrument, the GAF-powered optimizer can instantly simulate its real-time interaction with a remote human surgeon and a virtual patient. This tool predicts the instrument's precision, haptic fidelity, and potential for fatigue, optimizing its design for maximum surgical dexterity and intuitive control from a distance. This provides my students with an unparalleled ability to design solutions that are not just innovative, but also effective, ethical, and truly transformative.

Adaptive capability

Mentor superpower

I provide my students with the "Medical Device Integration Optimizer." This GAF-powered tool is a virtual laboratory for the medical engineer. When a student is designing a new tele-medicine system, the Optimizer allows them to see how it will perform in the real world. It can simulate the seamless integration of various medical devices across a tele-medicine network, and to identify potential compatibility issues, data bottlenecks, or security vulnerabilities. This will give you a hands-on understanding of the complex challenges of building a more intelligent and patient-centric healthcare system.

Your academic team

Guidance with depth and continuity

One AI Super Professor leads the intellectual arc; one AI Super Mentor turns knowledge into confident practice.

Portrait of Prof. Dr. Rishabh Arora, AI Super Professor
AI Super Professor

Prof. Dr. Rishabh Arora

Mastering the Engineering and Implementation of Robotic Surgery and Tele-Medicine Systems; Expertise in Medical Robotics, Haptics, Remote Communication Systems, and Healthcare Systems Integration.

Meet your professorOpen the classroom
Portrait of Dr. Agustin Peralta, AI Super Mentor
AI Super Mentor

Dr. Agustin Peralta

Medical Robotics, Control Systems Engineering, Telecommunications, Systems Integration, Medical Device Regulation, Project Management, Leadership in Medical Technology.

Meet your mentorOpen the classroom
Same faculty and level

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DurationBachelorMaster
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Doctorate
9 months · Fast track15000 EUR12000 EUR15000 EUR
12 months · Recommended18000 EUR15000 EUR18000 EUR
15 months · Standard21000 EUR18000 EUR21000 EUR
18 months · Flexible24000 EUR21000 EUR24000 EUR
21 months · Extended27000 EUR24000 EUR27000 EUR
24 months · Part-time30000 EUR27000 EUR30000 EUR

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