Machine Learning Systems Engineer (1 Year Fixed Term)
This ambitious initiative promises to offer unprecedented insights into the brain's algorithms of perception and cognition while serving as a key resource for aligning artificial intelligence models with human-like neural representations. As part of this project, we are seeking talented systems engineers with extensive experience in large scale data and compute clusters. As a Systems Engineer, you will be responsible for designing, deploying, and maintaining the compute infrastructure that supports our machine learning and data pipeline operations.
This position promises a vibrant and cooperative atmosphere within the laboratories of Andreas Tolias ( ), Tirin Moore ( ) and other labs at Stanford University renowned for their expertise in perception, cognition, pioneering neural recording techniques, computational neuroscience, machine learning, and Neuro-AI research. Duties include:
- • Design and develop complex and specialized equipment, instruments, or systems; coordinate detailed phases of work related to responsibility for part of a major project or for an entire project of moderate scope.
- • Develop technical and methodological solutions to complex engineering/scientific problems requiring independent analytical thinking and advanced knowledge.
- • Develop creative new or improved equipment, materials, technologies, processes, methods, or software important to the advancement of the field.
- • Contribute technical expertise, and perform basic research and development in support of programs/projects; act as advisor/consultant in area of specialty.
- • Contribute to portions of published articles or presentations; prepare and write reports; draft and prepare scientific papers.
- • Provide technical direction to other research staff, engineering associates, technicians, and/or students, as needed.
- * - Other duties may also be assigned
- • Work on a collaborative and uniquely positioned project spanning several disciplines, from neuroscience to artificial intelligence and engineering.
- • Work jointly with a vibrant team of researchers and scientists in a project dedicated to one mission, rooted in academia but inspired by science in industry.
- • Competitive salary and benefits.
- • Strong mentoring in career development.
In addition to completing the application, please send your CV and one page interest statement to: [email protected] DESIRED QUALIFICATIONS:
- • 3+ years of experience in designing, managing and running large-scale compute infrastructure in the context of machine learning
- • Experience with containerization technologies like Docker and orchestration platforms like Kubernetes or SLURM
- • Proficiency in scripting languages such as Python, Bash, or PowerShell
- • Strong knowledge of Linux/Unix systems administration
- • Ability to work effectively in a collaborative, multidisciplinary environment
- • Familiarity with modern distributed big data tools and pipelines such as Apache Spark, Arrow, Airflow, Delta Lake, or similar
- • Familiarity with machine learning frameworks like PyTorch or JAX
- • In-depth experience with cloud computing resources
- • Thorough knowledge of GPU-based HPCs in the context of machine learning.
Bachelor's degree and three years of relevant experience, or combination of education and relevant experience. KNOWLEDGE, SKILLS AND ABILITIES (REQUIRED):
- • Thorough knowledge of the principles of engineering and related natural sciences.
- • Demonstrated project management experience.
None PHYSICAL REQUIREMENTS*:
- • Frequently grasp lightly/fine manipulation, perform desk-based computer tasks, lift/carry/push/pull objects that weigh up to 10 pounds.
- • Occasionally stand/walk, sit, twist/bend/stoop/squat, grasp forcefully.
- • Rarely kneel/crawl, climb (ladders, scaffolds, or other), reach/work above shoulders, use a telephone, writing by hand, sort/file paperwork or parts, operate foot and/or hand controls, lift/carry/push/pull objects that weigh >40 pounds.
* - Consistent with its obligations under the law, the University will provide reasonable accommodation to any employee with a disability who requires accommodation to perform the essential functions of his or her job. WORKING CONDITIONS:
- • May be exposed to high voltage electricity, radiation or electromagnetic fields, lasers, noise > 80dB TWA, Allergens/Biohazards/Chemicals /Asbestos, confined spaces, working at heights ?10 feet, temperature extremes, heavy metals, unusual work hours or routine overtime and/or inclement weather.
- May require travel.
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