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Splice logo

Senior Machine Learning Engineer - Generative Models

Splice

Salary Range

165k - 206k USD / YEAR

Job Summary

We are seeking a Senior Machine Learning Engineer to join our Splice AI & Audio Science team. As a key member of the team, you will design and optimize cutting-edge model architectures for generative audio/music applications, collaborate with other researchers and engineers, and contribute to integrating machine learning models into our products. You will have the opportunity to work on state-of-the-art deep learning techniques, explore new building blocks in generative models, and stay current with the latest advancements in machine learning applied to generative models in the audio domain. Our team is passionate, creative, and committed to using AI in a creator-centric, ethical, and responsible way. With flexible remote work options, $4,000/year travel stipends, and equity in a fast-growing company, we offer a competitive compensation package of $165,000 - $206,000 per year. If you are a seasoned expert with a strong track record in designing, training, evaluating, and deploying machine learning models, we encourage you to apply now.

JOB TITLE: Senior Machine Learning Engineer

LOCATION: Remote / NY

TEAM INFORMATION:

The Splice AI & Audio Science team is dedicated to pushing the boundaries of artificial intelligence applied to audio data, with the mission to empower music creators everywhere. Being musicians ourselves, we are deeply committed to the use of AI in a creator-centric, ethical and responsible way. Our team consists of passionate and creative individuals who thrive in a collaborative, innovative, and fast-paced environment.

WHAT YOU WILL DO:

  • Design, adapt and optimize cutting-edge model architectures for generative audio/music applications, leveraging state-of-the-art deep learning techniques for audio/music synthesis.

  • Collaborate with other Applied Researchers and Machine Learning Engineers to design, train, fine-tune, and deploy scalable models to production.

  • Explore and implement core building blocks in generative models, such as general Variational Autoencoders (VAEs), Neural Audio Codecs (RVQ / VAE), GANs, Diffusion Models, and Transformer-based architectures.

  • Contribute to integrating machine learning models into Splice’s products, delivering new and creative experiences for music creators.

  • Performance Benchmarking and Evaluation**:** design and run experiments to benchmark the accuracy, quality and performance of trained models.

  • Stay current with the latest advancements in machine learning applied to generative models in the audio domain, incorporating and sharing relevant insights into the applied research process.

  • Documentation and Knowledge Sharing**:** document experiments, best practices, and lessons learned to facilitate knowledge sharing and maintain reproducibility. Provide technical guidance and training to team members on model training, evaluation, deployment and optimization techniques.

JOB REQUIREMENTS:

  • Master's or PhD degree in Electrical Engineering, Computer Science or related Engineering discipline.

  • Proven ability and track record designing, training, evaluating and deploying machine learning models in production environments, powering real applications.

  • 2+ years of hands-on experience with generative models architectures in the audio, image or language domains. Specific experience with Latent Diffusion Models and Transformer-based architectures is a must.

  • Proficiency in Python, C/C++, or CUDA. Strong proficiency in machine learning frameworks (e.g., TensorFlow, PyTorch).

  • Hands-on experience with cloud services (e.g., AWS, Azure, GCP) and containerization technologies (e.g., Docker, Kubernetes).

  • Comfortable with software development best practices and version control systems (e.g., Git).

NICE TO HAVES:

  • Familiarity with audio signal processing, music information retrieval (MIR), or audio synthesis techniques is a strong plus.

  • Background or knowledge in music production.

 

The national pay range for this role is $165,000 - $206,000. Individual compensation will be commensurate with the candidate's experience.