AI/ML Engineer
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Engineer (~3 years) delivering measurable impact in ADAS perception systems. Improved traffic-sign recognition accuracy from ~50% to ~95% with fast retrain cycles (~15 minutes) using compact architectures and implemented U-Net–based lane segmentation to accelerate dataset readiness and validation.
PoC-level evaluations of YOLOv8, ENet, ResNet, ViT, SAM, and Grounding DINO to assess inference performance, resource requirements, and feasibility against internal KPIs.
ENGINEER– SENSOR PERCEPTION at RNTBCI (2024-06 – Present)
GRADUATE ENGINEERING TRAINEE at RNTBCI (2023-06 – 2024-05)
INTERN at RNTBCI (2023-01 – 2023-05)
BACHELOR'S DEGREE in MECHANICAL ENGINEERING – ANNA UNIVERSITY (2019 – 2023)
HIGHER SECONDARY (12TH) – Higher Secondary School (2019 – 2019)
SENIOR SECONDARY (10TH) – Senior Secondary School (2017 – 2017)