Real-Time Multimodal CV System
A dual-pipeline webcam system combining hand gesture recognition and facial emotion recognition using MediaPipe landmarks, a lightweight MLP, and a GCN-based facial classifier.
Machine Learning . Computer Vision . NLP
I build real-world machine learning systems focusing on efficient, lightweight, and deployable solutions
Hi, I'm Santosh, a Machine Learning and Data Science engineer focused on turning strong model ideas into systems that can actually run in production.
My recent work spans landmark-based computer vision, multilingual aspect-based sentiment analysis, and real-time inference pipelines built for practical use instead of benchmark-only demos.
I care about efficient architectures, clean preprocessing, honest evaluation, and the details that make ML systems stable outside the notebook.
Explore my GitHubA dual-pipeline webcam system combining hand gesture recognition and facial emotion recognition using MediaPipe landmarks, a lightweight MLP, and a GCN-based facial classifier.
An end-to-end benchmark comparing Classical ML (TF-IDF + LR), a Korean Transformer (KcELECTRA), and a small LLM (Qwen 2.5) for aspect-based sentiment analysis on Korean restaurant reviews.
If you want to discuss ML systems, research implementation, or practical deployment work, I'm happy to connect.
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