Member of Technical Staff, Multimodal Speech

Hark

• $180K — $450K *
Consumer Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Proven track record of advancing speech or audio models through innovations in data, modeling, or training.
  • Strong experience in speech/audio domains such as ASR, TTS, or audio foundation models.
  • Experience with large-scale machine learning systems and distributed training.
  • Strong background in data-driven experimentation, systematic evaluation, and model iteration.
  • Ability to drive end-to-end impact from research to production.

Responsibilities

  • Drive research and development to advance speech and audio capabilities in multimodal models.
  • Develop and improve large-scale speech and audio data pipelines.
  • Design and implement state-of-the-art models for speech and audio.
  • Build evaluation frameworks and internal benchmarks for user experience metrics.
  • Optimize models and systems for real-time performance and scalability.
  • Collaborate closely with product and engineering teams to translate research into user-facing AI experiences.

Benefits

  • Opportunity to work with cutting-edge AI technologies in a rapidly emerging field.
  • Collaborative environment with cross-functional teams focused on impactful innovations.
  • Focus on real-time systems that enhance user interactions with AI.
  • A chance to shape the future of multimodal intelligence and human-computer interaction.
Full Job Description
About the Role

The Omni team at Hark is building the next generation of AI experiences beyond text, enabling models to understand and generate content across multiple modalities, including text, audio. Our goal is to create seamless, real-time multimodal intelligence that powers intuitive and immersive user experiences.

As part of the Omni team, you will drive the development of advanced speech and audio capabilities within multimodal foundation models. You will work across the full stack-from data and modeling to training, evaluation, and real-time serving-pushing the boundaries of speech intelligence and human-computer interaction.

Responsibilities
  • Drive research and development to advance speech and audio capabilities in multimodal models, including speech recognition, synthesis, and understanding.
  • Develop and improve large-scale speech and audio data pipelines, including data collection, filtering, alignment, and synthetic data generation.
  • Design and implement state-of-the-art models for speech and audio, including end-to-end multimodal architectures and real-time systems.
  • Build evaluation frameworks and internal benchmarks to measure speech quality, latency, robustness, and overall user experience.
  • Optimize models and systems for real-time performance, scalability, and production deployment.
  • Collaborate closely with product and engineering teams to translate research innovations into impactful, user-facing AI experiences.

Requirements
  • Proven track record of advancing speech or audio models through innovations in data, modeling, or training.
  • Strong experience in speech/audio domains such as ASR, TTS, speech-to-speech, or audio foundation models.
  • Experience with large-scale machine learning systems and distributed training.
  • Strong background in data-driven experimentation, systematic evaluation, and model iteration.
  • Strong ownership mindset and ability to drive end-to-end impact from research to production.

Bonus Qualifications
  • Familiarity with signal processing, acoustics, or audio representation learning is a plus
  • Experience with multimodal systems (speech + text, speech + vision) or real-time AI systems is a strong plus.

Compensation

The US base salary range for this full-time position is between $180,000 - $450,000 annually.

The pay offered for this position may vary based on several individual factors, including job-related knowledge, skills, and experience. The total compensation package may also include additional components/benefits depending on the specific role. This information will be shared if an employment offer is extended.

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