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This Master Thesis project focuses on enhancing robust AI inference within a WebAssembly (Wasm) engine. The role involves analyzing Wasm bytecode, investigating data flow during execution, and identifying opportunities to improve the engine's robustness, fail-safety, and reliability. The goal is to design and prototype methods for monitoring AI inference data flow within Wasm.
Winter Semester 2026/27 - limited to 5-6 month
YOUR TASKS
YOUR PROFILE
Contact: Sarah Disch