Machine Learning Scientist

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πŸ”₯ 2 minutes ago

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Rime

11 - 50 employees

πŸ€– Artificial Intelligence

☁️ SaaS

🀝 B2B

Artificial Intelligence β€’ SaaS β€’ B2B

Rime is a company focused on web-based voice and linguistics technology. The provided site CSS and class names indicate a product that exposes multiple voice personas (professional, casual, formal, energetic), language/multilingual support, and interactive demos and visualizations (globe, languages check). Rime appears to offer a customizable voice/speech platform or interface β€” likely delivered as an online product aimed at other organizations or developers.

πŸ“‹ Description

β€’ Design, train, and evaluate speech synthesis models, autoregressive and non-autoregressive. β€’ Drive research on full-duplex and half-duplex multi-modal architectures, including unified S2S systems. β€’ Choose and iterate on speech representations: neural codecs, semantic tokens, mel features, continuous latents. β€’ Build rigorous evaluation, objective and perceptual. Hold the bar on quality and prosodic control. β€’ Collaborate with our linguists on TTS frontend behavior so modeling and frontend choices reinforce each other.

🎯 Requirements

β€’ Deep familiarity with the speech synthesis literature, contemporary and historical β€” Tacotron, FastSpeech, VITS, VALL-E, the codec-LM lineage. Opinions on what worked and why. β€’ Hands-on training with neural codecs (EnCodec, DAC, Mimi, etc.) and multiple representation choices. β€’ Experience with full- or half-duplex multi-modal modeling (Moshi, LLaMA-Omni, streaming S2S). β€’ Strong attention to detail on data quality. You notice when an annotation pipeline is silently degrading or when an eval set has leakage. β€’ Willing to roll up your sleeves on unglamorous data and training work β€” paired with the agency to build pipelines so the team isn't stuck doing it by hand. β€’ Working knowledge of TTS frontend (G2P, normalization, prosody) and experience working with linguists. β€’ Strong PyTorch fundamentals. Comfortable with training loops, distributed training, model internals. β€’ PhD or equivalent research experience in speech, audio, ML, or computational linguistics or a track record that makes the credential irrelevant. β€’ Multilingual TTS experience. β€’ Background in prosody or paralinguistics. β€’ Published work in speech, audio, or core ML venues. β€’ Experience taking research models to production: quantization, distillation, streaming inference.

πŸ–οΈ Benefits

β€’ Competitive base + meaningful early-stage equity β€’ Remote-friendly β€’ Visa sponsorship available β€’ Access to a proprietary, full-duplex, studio-quality conversational speech corpus β€’ Compute and tooling to do the work β€’ Direct influence on the future of voice AI

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