Machine Learning Engineer

Nace AI

$120K — $160K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years experience in machine learning or related field
  • Hands-on expertise in training large language models (LLMs) and vision-language models (VLMs)
  • Proficient in Python with solid project experience
  • Strong understanding of deep learning models, particularly Transformers
  • Experience scaling inference infrastructure for LLMs/VLMs
  • Familiar with ML frameworks like PyTorch and TensorFlow
  • BS degree in computer science or a related technical field

Responsibilities

  • Design and maintain end-to-end ML systems including data pipelines and model evaluation
  • Fine-tune large language models to improve efficiency
  • Incorporate recent advancements in ML research into existing Nace.AI models
  • Collaborate with cross-functional teams to identify ML opportunities
  • Ensure reliable and maintainable deployment of AI-driven features

Benefits

  • Collaborative and innovative work environment
  • Opportunities to work with cutting-edge ML technologies
  • Engagement in impactful projects aligning with strategic goals
  • Dynamic, fast-paced team culture
  • Opportunities for skill development and professional growth
Full Job Description
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.AI'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).

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