Staff Machine Learning Engineer
NICE
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Preparing for this interview
Interviews for learning roles keep coming back to Machine learning, Python, LLMs, PyTorch. Practise those questions before you sit with NICE.
Questions you are likely to be asked
- Why do you want to join NICE?
- What is your experience with Machine learning? Tell me one thing you learned the hard way.
- Tell me about a time the data was messy or wrong. What did you do?
- How would you explain your model's result to someone who is not technical?
- What would you check first if a model's accuracy dropped after going live?
Prep Sarthi gives you a free mock interview: an AI interviewer asks you questions like these out loud, from your own CV and this job, and shows your score and your weakest answer.
Practise the Staff Machine Learning Engineer at NICE interview free →At NiCE, we don’t limit our challenges. We challenge our limits. Always. We’re ambitious. We’re game changers. And we play to win. We set the highest standards and execute beyond them. And if you’re like us, we can offer you the ultimate career opportunity that will light a fire within you.
So what is the role about?
NiCE is looking for a Staff Machine Learning Engineer to join NiCE Labs Research (NLR), the team responsible for model expertise and agent architecture for the Cognigy platform. You will evaluate and optimize AI models across Cognigy's agentic systems, including speech models (text-to-speech and speech-to-speech). You will track the model landscape, identify state-of-the-art candidates, and develop strategies to improve quality and latency while reducing cost. You will work closely with NLR colleagues to extend the team's evaluation framework and build proof-of-concept implementations that demonstrate your recommendations.
How will you make an impact?
- Monitor the field for new state-of-the-art models and assess their relevance to Cognigy use cases; stay current on advances in ML, model optimization, and agentic AI.
- Design and run model evaluations, including human-judged protocols for generated output and validation of automated metrics against human ratings.
- Design and execute optimization strategies (fine-tuning, quantization, distillation, efficient inference) to improve quality, reduce latency, and lower cost.
- Deploy and benchmark open-weight models on cloud platforms and compare platforms for hosting.
- Provide technical review and guidance on teammates' model optimization work.
- Communicate results and recommendations to technical and non-technical stakeholders.
Have you got what it takes?
- MS in computer science, machine learning, data science, or a related field.
- 3+ years of post-graduate, hands-on experience with ML models, including training, fine-tuning, and evaluation.
- Experience with model optimization techniques such as quantization, distillation, or efficient inference.
- Experience designing evaluations or benchmarks for AI systems, including subjective or human-rated measures.
- Proficiency in Python and PyTorch or TensorFlow.
- Experience with cloud ML infrastructure (AWS, Azure, or GCP) for model testing and deployment.
- Ability to build working relationships with cross-functional teams, keep pace with a fast-changing field and shifting priorities, and present clearly to internal and external stakeholders.
You will have an advantage if you have:
- Experience evaluating or fine-tuning TTS or S2S models for production use, or related audio and speech work.
- Exposure to agentic AI frameworks or conversational AI platforms.
- Docker, microservice deployment, and GPU inference serving.
What’s in it for you?
Join an ever-growing, market disrupting, global company where the teams – comprised of the best of the best – work in a fast-paced, collaborative, and creative environment! As the market leader, every day at NiCE is a chance to learn and grow, and there are endless internal career opportunities across multiple roles, disciplines, domains, and locations. If you are passionate, innovative, and excited to constantly raise the bar, you may just be our next NICEr!
Enjoy NiCE-FLEX!
At NiCE, we work according to the NiCE-FLEX hybrid model, which enables maximum flexibility: 2 days working from the office and 3 days of remote work, each week. Naturally, office days focus on face-to-face meetings, where teamwork and collaborative thinking generate innovation, new ideas, and a vibrant, interactive atmosphere.
Requisition ID: 11790
Reporting into: Director, Engineering, AI Research, NiCE Labs
Role Type: Individual Contributor
About NiCE
NICE Ltd. (NASDAQ: NICE) software products are used by 25,000+ global businesses, including 85 of the Fortune 100 corporations, to deliver extraordinary customer experiences, fight financial crime and ensure public safety. Every day, NiCE software manages more than 120 million customer interactions and monitors 3+ billion financial transactions.
Known as an innovation powerhouse that excels in AI, cloud and digital, NiCE is consistently recognized as the market leader in its domains, with over 8,500 employees across 30+ countries.
NiCE is proud to be an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, national origin, age, sex, marital status, ancestry, neurotype, physical or mental disability, veteran status, gender identity, sexual orientation or any other category protected by law.
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Listed on greenhouse · posted 2026-09-30. ApplySarthi collects openings and links to application pages; the role is advertised by NICE, not by us.