- Singapore
Working Location
Job Description
Responsibilities
About Slash
Slash is a hi-tech startup studio with a mission to build tech AI-powered products and scalable digital platforms that create real-world impact. Since 2016, we’ve partnered with ambitious enterprises and government organizations to design, engineer, and launch cutting-edge solutions — with Generative AI at the core of what we do.
We specialize in AI-powered application delivery, from product design and high-performance engineering to DevOps and AI operations. Headquartered in Singapore, our global team and clients operate R&D hubs across Southeast Asia. We are a team of entrepreneurs, engineers, and product builders dedicated to solving complex technical challenges and turning bold ideas into impactful technology.
About our Client
Our client’s product is an AI voice-sensing device, a breakthrough wearable that detects the gap between what someone says and how their voice actually sounds. Rooted in Pythagorean acoustic physics and the Navarasa framework, the system functions as a state detector rather than a conventional emotion labeler. The team is a small, fast-moving team building at the intersection of emotion labeling, ancient wisdom, and measurable science.
About the Role
We are looking for a hands-on Machine Learning Engineer to take complete ownership of our full AI stack. Your primary responsibility will be expanding our speech emotion recognition (SER) model into a physics-based harmonic vocal state engine, alongside building and maintaining our dual-instance production LLM infrastructure. In this role, you will work directly with the Founder and Lead Developer with zero bureaucracy or committee oversight. We need an engineer who excels at owning problems end-to-end.
Key Responsibilities
Harmonic Vocal State Engine (Audio & Physics)
LLM Infrastructure & Operations
Model Quality & Continuous Improvement
Requirements & Qualifications
Hiring Process (Take-Home Assessment)
We do not conduct whiteboard interviews. Our technical evaluation is a 48-Hour Practical Assessment consisting of two deliverables:
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