AI Engineer
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Agentic Dataset Generation: Designed and developed an agentic AI system to automate the construction of SWE-bench++, enabling large-scale generation and validation of C++ software engineering benchmark instances with minimal manual intervention.
Model Evaluation and Benchmarking: Evaluated and benchmarked multiple LLMs on C++ software engineering tasks, analyzing issue resolution accuracy, patch generation quality, and overall performance across the automated benchmark.
Automation Pipelines: Built scalable automation pipelines for repository analysis, environment provisioning, build execution, and evaluation, streamlining end-to-end dataset generation and benchmarking workflows.
Intern at SkyLabs AI (2025-06 – 2025-09)
Systematic Literature Review (SLR) Researcher at AI Security Research Collaboration (2025-06 – Present)
Intern at Genesys Research Lab (2024-09 – 2025-12)
Bachelor of Computer Science in Computer Science – FAST National University of Computer and Emerging Sciences (2022-08 – 2026-06)