HARISSH A S

HARISSH A S

Research Intern @ NITTTR Chennai

About

I am currently pursuing my Master’s in Electrical Engineering at Columbia University, specializing in data-driven computational analysis. My research passion lies in computer vision and I am eager to leverage artificial intelligence in robotics to develop safe, reliable, and robust autonomous systems. Previously, I worked on diverse AI/ML projects spanning healthcare, agriculture, and governance. At NITTTR, I conducted research on brain tumor detection using deep learning , achieving strong clinical validation. At TNeGA, I was promoted to Senior Intern, where I led projects such as cattle identification, crop & pest detection, and enhancements to the Facial Recognition Attendance System (FRAS). These experiences gave me a strong foundation in computer vision, model deployment, and real-world AI applications. I work at the intersection of machine learning, generative AI, and intelligent systems, with a focus on translating research into real-world impact across wireless networks, healthcare, autonomous technologies and joining Qualcomm’s MST team as a GenAI, ML & 5G Analytics Intern.

Country

United States

City

New York

Industry

Information Technology & Services

Skill

Computer Vision, Hyperparameter Optimization, Hyperparameter Tuning, NumPy, Industry 4.0, Julia (Programming Language), Java, JavaScript, Optical Communications, Wireless Communications Systems, Internet of Things (IoT), Wireless Technologies, ZigBee, XBee, Logistic Regression, Data Visualization, Time Series Analysis, Long Short-term Memory (LSTM), Image Analysis, MATLAB

Experience

NITTTR Chennai

Research Intern

NITTTR Chennai

LinkedIn
2025-6 - 2025-6 · 1 mo

India

• Conducted research on brain tumor detection using medical imaging, applying deep learning models YOLOv8, UNet, and ResNet-50 for tumor classification and segmentation. • Led supervised image processing for over 900 MRI scans, utilizing contrast enhancement, histogram equalization, and data augmentation to optimize input quality for machine learning. • Produced analytical reports and obtained clinical validation from radiologists to initiate development of a deep learning model for early-stage diagnosis by 30%. • Trained and evaluated multiple architectures on public datasets (e.g., BraTS, Figshare), achieving a peak accuracy of 92.4%, Dice coefficient of 0.87, and IoU score of 0.81. • Benchmarked performance across traditional ML classifiers (SVM, Random Forest) using SIFT + BoVW features vs. deep CNNs, demonstrating a 15% improvement in F1-score with deep learning

Tamil Nadu e-Governance Agency

Senior Intern AI/ML

Tamil Nadu e-Governance Agency

LinkedIn
2024-5 - 2024-11 · 7 mos

Tamil Nadu, India

• Promoted to Senior Intern for exceptional performance in ML research & deployment. • Led and mentored junior interns from Anna University across projects including pneumonia detection, retinal disease detection, myocardial scar identification, and satellite image crop classification. • Designed and deployed a Cattle Identification System using a lightweight YOLO-NAS model for muzzle detection, storing embeddings in FAISS/Quadrant DBs, and achieving 83–90% accuracy in under 3 weeks. • Automated processes with FastAPI services, improving scalability and real-world usability. • Enhanced the Facial Recognition Attendance System (FRAS) by building preprocessing pipelines and improving model robustness. • Developed and optimized Crop & Pest Detection models, localizing pests (Stemborer, Fall Armyworm, Leaffolder) and applying Segment Anything Model (SAM) for auto-annotations across 80 lakh images spanning 23 crops, achieving ~70% accuracy on real-time farmer-collected images. • Represented TNeGA in NVIDIA & AWS AI conferences, engaged with government departments (WRD, GIS), and interacted with AI/ML startups, delivering detailed reports to senior officials. • Volunteered at the TNeGA GIS Conference (attended by IAS, IPS, and Govt. officers), gaining exposure to high-level AI/ML applications in governance.

Education

Columbia University

Columbia University

LinkedIn

Electrical Engineering

2025-7 - 2027-1 · 1 yr 7 mos

Coursework: Spring 2026: Advanced Deep Learning Embedded AI Large Scale Stream Processing Mathematics for Machine learning ,controls and signals Fall 2025: Big Data Analytics Reinforcement Learning Digital Signal Processing Continues Control System

SSN College of Engineering

SSN College of Engineering

LinkedIn

ECE

2020-12 - 2024-6 · 3 yrs 7 mos
Columbia University

Columbia University

LinkedIn

Electrical Engineering

2025-7 - Present · 1 yr 3 mos

Coursework: Fall 2025: Big Data Analytics Convex Optimization Digital Signal Processing Data Centre Processing

Chennai Public School - India

Chennai Public School - India

LinkedIn

Computer Science

HARISSH A S's Contact Information

Email

******@***.com

Phone

(**) *** ****

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