Machine Learning Engineer

nace.aiยท Engineering
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๐Ÿ“ Palo Alto, CAFullTime

About this role

Role Overview:

As a Machine Learning Engineer, you will play a central role in translating cutting-edge machine learning research into scalable, production-ready solutions. You will collaborate closely with cross-functional teams to identify opportunities where ML can drive product value, architect robust model-centric systems, and ensure their seamless integration into real-world applications. The role requires a strong balance between theoretical understanding and engineering execution, with a focus on building reliable, maintainable, and high-impact AI-driven features that align with Nace.AIโ€™s strategic objectives.

Key Responsibilities:

  • Design, build, and maintain end-to-end ML systems, including synthetic data pipelines, model training, debugging, and performance evaluation.

  • Fine-tune large language models (LLMs) and implement meta-learning methods to enhance model generalization and efficiency.

  • Improve existing Nace.AI models by incorporating advancements from recent ML research.

Qualifications:

  • Hands-on experience training and fine-tuning large language models (LLMs) and vision-language models (VLMs), including practical work with pre-training, instruction tuning, and alignment techniques (GRPO,RLHF/DPO/PPO).

  • Hands-on Experience with Deep Learning Models, especially Transformers.

  • Ability to translate cutting-edge research from papers into clean, production-ready code (Paper to Code).

  • Proven experience scaling inference infrastructure for LLMs/VLMs, including expertise in model serving frameworks like vLLM, TGI.

  • Proficient in Python with a strong track record of building substantial projects.

  • Solid foundation in computer science fundamentals (data structures, algorithms, design patterns).

  • BS degree in CS or related technical field.

  • Solid Experience with ML frameworks and libraries (PyTorch, TensorFlow).

  • Self-starter comfortable working in a fast-paced, dynamic environment.

Preferred Qualifications:

  • MS/PhD in CS or related technical field.

  • Familiarity with data processing stacks such as Spark and Airflow.

  • Experience with multi-node GPU training.

  • Contributor to open-source ML projects.

  • Deep knowledge in Linear Programming.

  • Experience with advanced NLP and Multimodal post-training experience (e.g., model distillation, quantization, deployment optimization).

  • Experienced in inference time optimization, deep understanding of LLM serving optimizations for LLMs/VLMs.

  • Hands on experience with quantization techniques (AWQ, GPTQ, FP8/GGUF).

Frequently Asked Questions

Is the salary disclosed for the Machine Learning Engineer position at nace.ai?
The salary for this Machine Learning Engineer role at nace.ai is not publicly listed. Click "Apply Now" to learn more about the compensation package on their official careers page.
Where is the Machine Learning Engineer position at nace.ai located?
This Machine Learning Engineer role at nace.ai is based in Palo Alto, CA. The position is listed as on-site or hybrid. Check the full job description or apply directly to confirm the work arrangement.
Is the Machine Learning Engineer role at nace.ai full-time or part-time?
This is listed as a FullTime position. It is posted as a Machine Learning Engineer role in the Engineering department at nace.ai.
Which team or department does the Machine Learning Engineer at nace.ai belong to?
This Machine Learning Engineer position is part of the Engineering department at nace.ai. See the full job description for more information about the team structure and responsibilities.
How do I apply for the Machine Learning Engineer position at nace.ai?
Click the "Apply Now" button on this page. You will be redirected to nace.ai's official application portal hosted on ashby where you can submit your application directly.
When was the Machine Learning Engineer job at nace.ai posted?
This Machine Learning Engineer position at nace.ai was posted on Mar 17, 2026. Apply as soon as possible โ€” early applications are often reviewed first.
Machine Learning Engineer
nace.ai
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