Software Engineer; Language Modeling), BS
Listed on 2025-12-28
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Software Development
Software Engineer, Machine Learning/ ML Engineer
Description
We are seeking a highly skilled and motivated Sr. LLM Engineer to join our team in driving the advancement of our Language Model infrastructure. As a key member of our AI/ML team, you will be responsible for the training, hosting, and optimization of Large Language Model (LLM) instances within our compute environment. The ideal candidate should possess a strong passion for pushing the boundaries of language technology, a deep understanding of LLM architectures, and the grit to tackle complex challenges head-on.
This role requires a self-reliant individual with a drive to identify and fix inefficiencies, constantly striving to improve the codebase and optimize model performance. If you thrive in a fast-paced environment and have an unwavering commitment to delivering cutting‑edge language solutions, this position is for you.
- Design, develop, and maintain the infrastructure for training, hosting, and serving LLM instances.
- Optimize model training pipelines to achieve high performance and resource efficiency.
- Implement and integrate state-of-the-art LLM architectures and techniques.
- Collaborate with cross‑functional teams to understand business requirements and deliver impactful language solutions.
- Monitor and analyze model performance metrics, identifying areas for improvement and implementing optimizations.
- Develop and maintain documentation, best practices, and coding standards for LLM development and deployment.
- Stay up-to-date with the latest advancements in LLM research and industry trends, and incorporate them into our projects.
- Mentor and guide junior engineers, fostering a culture of continuous learning and knowledge sharing.
- 12+ years of experience in software engineering, with a focus on machine learning or natural language processing.
- Degree in Computer Science, Artificial Intelligence, or a related field.
- Strong expertise in deep learning frameworks such as Tensor Flow, PyTorch, or MXNet.
- Proficiency in programming languages such as Python, C++, or Java.
- Solid understanding of LLM architectures, training techniques, and evaluation methodologies.
- Familiarity with cloud platforms (e.g., AWS, GCP) and their machine learning services.
- Knowledge of software engineering best practices, including version control, testing, and continuous integration/deployment.
- Excellent problem‑solving and debugging skills.
- Strong communication and collaboration abilities to work effectively with cross‑functional teams.
- Advanced degree (Master's or Ph.D.) in Computer Science, Artificial Intelligence, or a related field.
- Proven track record of implementing and deploying large‑scale LLM systems in production environments.
- Experience with distributed computing frameworks like Apache Spark or Hadoop.
- Experience with natural language understanding, generation, and dialogue systems.
- Familiarity with techniques such as transfer learning, few‑shot learning, and reinforcement learning.
- Contributions to open‑source projects or research publications in the field of LLMs.
- Experience with serving models using APIs and building scalable inference pipelines.
- Knowledge of Dev Ops practices and tools like Docker, Kubernetes, and Jenkins.
12 yrs., B.S. in a technical discipline or 4 additional yrs. in place of B.S.
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