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Lead AI/ML Engineer
Multiple locations hybrid full time lead Mar 5, 2026
Skills
About this role
At ASAPP, our mission is simple: deliver the best AI-powered customer experience—faster than anyone else. To achieve that, we’re guided by principles that shape how we think, build, and execute. We value customer obsession, purposeful speed, ownership, and a relentless focus on outcomes. We work in tight, skilled teams, prioritize clarity over complexity, and continuously evolve through curiosity, data, and craftsmanship. We’re seeking technologists and problem solvers who thrive in fast-paced environments, love collaborating with great talent, and approach every day like it’s Day 1.
We're a globally diverse team with hubs in New York City, Mountain View, Latin America, and India—embracing both hybrid and remote work to bring the best minds together, wherever they are. If you're driven by continuous learning, rapid pivots, and the challenges of building in a high-growth startup, we’d love to talk. This is more than a job—it’s a journey.
You will lead the design and delivery of end-to-end voice AI solutions, combining large language models with speech technologies such as speech-to-text, text-to-speech, and real-time streaming audio pipelines. This role requires a hands-on technical leader who can architect low-latency, highly reliable conversational voice systems and guide a team through ambiguity toward production excellence.
We are looking for someone who understands the unique constraints of voice experiences, latency, turn-taking, interruption handling, streaming inference, and audio quality, and can translate these into scalable, enterprise-grade systems.
This is a hybrid role with weekly in-person responsibilities. We have offices in New York City and Mountain View, CA
Benefits include:
Competitive compensation with stock options
Comprehensive medical, vision, and dental insurance
401k matching
Fitness and wellness stipend
Mental well-being benefits
Professional learning and development stipend
Parental leave, including adoptive and foster parents
3 weeks paid time off (increases with tenure) along with sick leave, bereavement and jury duty
ASAPP is committed to creating a diverse environment and is proud to be an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, gender, gender identity or expression, sexual orientation, national origin, disability, age, or veteran status. If you have a disability and need assistance with our employment application process, please email us at careers@asapp.com to obtain assistance. #LI-SL1 #LI-Hybrid
country: US
all locations: [New York Mountain View]
commitment: Full-time
department: Technology
location: New York
team: Engineering
What you'll do: Build real-time conversational AI systems, including voice interfaces powered by speech-to-text, text-to-speech, and streaming inference pipelines
Design and optimize low-latency inference workflows for multimodal applications involving text, speech, and real-time interactions
Integrate and apply foundation models from major providers (OpenAI, AWS Bedrock, Anthropic, etc.) for prototyping and production use cases
Adapt, evaluate, and optimize LLMs for domain-specific enterprise applications
Build and maintain infrastructure for experimentation, deployment, and monitoring of AI models in production
Improve model performance and inference workflows with attention to latency, cost, and reliability
Provide technical leadership within the team, mentoring engineers and promoting best practices in ML engineering
Partner with product and cross-functional stakeholders to translate requirements into scalable ML solutions
Contribute to the evolution of internal standards for experimentation, evaluation, and deployment
What you'll need: 6+ years of experience in Machine Learning or AI systems, with hands-on experience in LLMs, speech, or conversational AI systems
Experience building on integrating speech-to-text and text-to-speech systems
Strong experience integrating voice models into production applications
Proficiency on Python and ML frameworks like PyTorch or TensorFlow
Proven experience leading complex, cross-functional AI initiatives
Deep understanding of latency-sensitive system design and distributed architectures
Strong proficiency in Python and ML frameworks such as PyTorch or TensorFlow
Understanding of RAG pipelines, prompt engineering, and vector search
Experience deploying and scaling AI systems using AWS (required), Docker, Kubernetes, and CI/CD practices
Strong communication skills with the ability to align engineering, product, and executive stakeholders
Comfortable operating in fast-paced environments and driving clarity in ambiguous problem spaces
What we'd like to see: Experience with speech model fine-tuning and acoustic/language model optimization
Experience with production applications of S2S models
Hands-on experience with real-time or streaming audio systems (WebRTC, gRPC streaming, or similar architectures)
Experience optimizing TTS prosody, pronunciation control, and voice customization
Background in MLOps, experimentation platforms, or evaluation frameworks for speech and conversational systems
Contributions to open-source AI or speech tooling
Graduate degree (MS or PhD) in Computer Science, Machine Learning, Speech Processing, or related field