Research Computing Engineer (AI Infrastructure and HPC)
Pennsylvania State University · Penn State University Park
- Employer
- Pennsylvania State University
- Requisition id
- Research-Computing-Engineer--AI-Infrastructure-and-HPC-_REQ_0000081624-2
- First posted (employer ATS)
- (25d ago)
- First seen by this site
- 2026-09-11T21:18:40Z
- Last verified live
- 2026-10-06T01:48:32Z
- Source
- Employer career portal (workday)
Job description
APPLICATION INSTRUCTIONS:
CURRENT PENN STATE EMPLOYEE (faculty, staff, technical service, or student), please
login to Workday
to complete the
internal application process
. Please do not apply here, apply internally through Workday.
CURRENT PENN STATE STUDENT (not employed previously at the university) and seeking employment with Penn State, please
login to Workday
to complete the
student application process.
Please do not apply here, apply internally through Workday.
If you are NOT a current employee or student, please click “Apply” and complete
the application process for external applicants
.
Approval of remote and hybrid work is not guaranteed regardless of work location. For additional information on remote work at Penn State, see
Notice to Out of State Applicants
.
POSITION SPECIFICS
The Institute for Computational and Data Sciences (ICDS)
at
Penn
State
seeks
a
Resea
rch Computing Engineer
to join our technical team. This role supports Penn State’s
resea
rch mission by designing,
operating
, automating, and
optimizing
the
GPU and
AI and computing infrastructure used by
resea
rchers across the university
, along with the high-performance computing systems that support it.
This position will be filled at the
Research Computing Systems Engineer - Intermediate Professional
level.
Candidates must be U.S. citizens due to
specific access requirements associated with this position.
This position is ideal for an engineer who enjoys building reliable, scalable systems for machine learning, data-intensive research, and advanced computing workloads. The successful candidate will work across GPU systems, HPC platforms, storage, networking, automation, and user-facing research workflows to enable
cutting-edge
research in AI, simulation, and computational science.
Work Arrangement
: This is a full-time position, which will report to the
Research HPC Manager
and requires on-site work at University Park and is not supportive of remote work
.
As part of a collaborative engineering team,
you’ll
contribute across a broad range of responsibilities including:
Collaborate with teammates, users, and vendor support to diagnose issues and implement solutions across
compute
, storage, networking, and software environments.
Monitor,
maintain
, automate, and improve AI and HPC systems and
supporting
infrastructure.
D
esign, deploy,
operate
, troubleshoot, and
optimize
systems using DevOps and infrastructure-as-code practices.
Support GPU-accelerated computing environments for AI, machine learning, and scientific workloads.
Partner with researchers and ICDS staff to understand workload requirements and develop practical engineering solutions for system configuration, performance, and research workflows.
Support security, logging, documentation, and compliance
process
for the systems we
operate
, including environments subject to federal research
security.
Contribute to planning,
requirements
gathering, process improvement, and operational readiness for new services and infrastructure.
Provide timely updates to system documentation and respond to user questions with clear, actionable guidance.
Evaluate and improve tools, platforms, and workflows that support AI model development, training, inference, and data movement at scale.
Required qualifications and skills include the following:
Ability to work effectively in a Linux environment, including command-line tools, file editing, POSIX permissions, and system configuration.
Strong scripting ability in Bash and Python.
Strong problem-solving skills and the ability to debug complex systems.
Ability to work collaboratively as part of a technical team.
Experience using AI tools or AI agents to improve programming, debugging, development, or prototyping workflows.
Clear written and verbal communication skills
.
Preferred qualifications:
Experience with one or more of the following is
helpful but not
required
.
AI and HPC Workloads
Administration of multi-GPU nodes a
t
scale
, including driver and firmware lifecycle management,
NVLink
/
NVSwitch
topology validation, GPU health monitoring and tuning for multi-GPU or multi-node
GPU workloads.
Experience supporting AI/ML infrastructure, including environments used for model training, inference, experiment workflows, and large-scale data processing.
Experience with job schedulers such as
Slurm
, PBS,
HTCondor
, or LSF.
Software development experience and familiarity with HPC programming environments such as C/C++, Fortran, CUDA, MPI, or OpenMP.
Infrastructure and Automation
DevOps experience, including Git-based workflows, CI/CD, automation, and collaborative development practices.
Experience with system deployment tools such as
xCAT
,
Warewulf
,
OpenCHAMI
, OpenStack/Bifrost, or MAAS.
Experience administering or supporting Kubernetes.
Experience with virtualization and containerization technologies such as VMware, Docker,
Apptainer
, or
Podman
.
Networking and Storage
Networking experience, including EVPN, BGP, and IPv6.
Experience with high-speed interconnects such as InfiniBand, HPE Slingshot, or similar HPC fabrics.
Experience with HPC or distributed storage systems such as GPFS,
Lustre
, Ceph, or VAST.
Observability and Security
Monitoring and observability experience with tools such as Grafana, Graphite, Prometheus,
VictoriaMetrics
, or
InfluxDB
.
Experience with databases such as MySQL/MariaDB or PostgreSQL.
Security experience including identity and access management, single sign-on, and LDAP/Active Directory.
Background and Process
Familiarity with Agile project development.
Prior experience in academic research computing, research data infrastructure, or large-scale shared computing environments.
Application Instructions:
To receive full consideration for the position, applications should include:
A cover letter expressing the candidate’s interest in the role
A current Curriculum Vitae (CV) or Resume
Why ICDS
At ICDS,
you’ll
buil
d and su
pport infrastruct
u
re that enables advanced research in artificial intelligence, machine learning, simulation, data science, and computationally intensive discovery.
You’ll
work on clusters, storage and GPU systems Penn State researchers rely on
for AI, machine
learning
and computational research
.
You
won’t
own a narrow slice of that. Our engineers work across provisioning, scheduling, storage, networking
, GPU
infrastructure
and user-facing tooling.
You
'll
debug problems from
a
user
’s
job submission
all the way
down to
drivers and system fir
mware
, and
you’ll
learn a lot on the way.
You'll
also b
e close to
the science
.
You
’ll
talk to the people running the workloads, understand what
they’re
trying to
accomplish
,
and
engineer
systems around actual researc
h
needs rather than requirements handed down from somewhere else
.
It’s
a collaborative team, and the problems are
rarely the same twice
.
MINIMUM EDUCATION, WORK EXPERIENCE & REQUIRED CERTIFICATIONS
Bachelor's Degree
1+ years of relevant experience; or an equivalent combination of education and experience accepted
Required Certifications:
None
BACKGROUND CHECKS/CLEARANCES
Employment with the University will require successful completion of background check(s) in accordance with University policies.
Penn State does not sponsor or take over sponsorship of a staff employment Visa. Applicants must be authorized to work in the U.S.
SALARY & BENEFITS
The salary range for this position, including all possible grades, is $81,312.00 - $122,016.00.
Salary Structure
- Information on Penn State's salary structure
Penn State provides a competitive benefits package for full-time employees designed to support both personal and professional well-being. In addition to comprehensive medical, dental, and vision coverage, employees enjoy robust retirement plans and substantial paid time off which includes holidays, vacation and sick time. One of the standout benefits is the generous 75% tuition discount, available to employees as well as eligible spouses and children. For more detailed information, please visit our
Benefits Page
.
CAMPUS SECURITY CRIME STATISTICS
Pursuant to the Jeanne Clery Disclosure of Campus Security Policy and Campus Crime Statistics Act and the Pennsylvania Act of 1988, Penn State publishes a combined Annual Security and Annual Fire Safety Report (ASR). The ASR includes crime statistics and institutional policies concerning campus security, such as those concerning alcohol and drug use, crime prevention, the reporting of crimes, sexual assault, and other matters. The ASR is available for review
here
.
EEO IS THE LAW
Penn State is an equal opportunity employer and is committed to providing employment opportunities to all qualified applicants without regard to race, color, religion, age, sex, sexual orientation, gender identity, national origin, disability or protected veteran status. If you are unable to use our online application process due to an impairment or disability, please contact 814-865-1473.
Penn State is committed to and accountable for advancing equity, respect, and belonging. We embrace individual uniqueness, as well as a culture of belonging that supports equity initiatives, leverages the educational and institutional benefits of inclusion in society, and provides opportunities for engagement intended to help all members of the community thrive. We value belonging as a core strength and an essential element of the university’s teaching, research, and service mission.
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