AIML Systems Engineer, (2026 New College Graduate)
Richardson, TX - USA
Job Summary
About GlobalFoundries
GlobalFoundries (GF) is a leading full-service semiconductor foundry providing a unique combination of design development and fabrication services to some of the worlds most inspired technology companies. With a global manufacturing footprint spanning three continents GF makes possible the technologies and systems that transform industries and give customers the power to shape their markets.
New College Graduates Overview:
We offer many full-time employment paths for recent graduates which provide accelerated training in a fast-paced work environment cross-functional working opportunities and talent mobility. New college graduates are provided with mentorship networking and leadership opportunities which give our new team members life-long connections and skills.
Summary of Role:
We are seeking an early-career AI/ML Systems Engineer to deepen our workload analysis and performance modeling capabilities. You will take ownership of workload characterization and hardware mapping studies contribute to cross-functional architecture discussions and help define the teams methodology for estimating and validating performance KPIs. This is a high-impact role for someone who wants to sit at the intersection of machine learning computer architecture and systems optimization.
Essential Responsibilities include:
- You will independently study AI/ML workloads across the inference and training stack including CNNs transformers recurrent architectures and emerging model classes and build quantitative models of their behavior on real and projected hardware. This includes identifying compute memory bandwidth and power bottlenecks using techniques like roofline analysis operational intensity profiling and bottleneck decomposition.
- You will work closely with SoC and IP architecture teams to map workload demands to hardware capabilities and feed your findings into discussions around design tradeoffs ISA extensions memory subsystem sizing and on-chip vs. off-chip bandwidth allocation. On the software side you will engage with compiler and runtime teams to identify where kernel optimization scheduling or memory layout changes can close performance gaps.
- A significant part of the role involves estimation and modeling before silicon is available building spreadsheet or code-based models that project achievable throughput latency and efficiency for candidate architectures then validating those models against silicon or simulation data.
- You will communicate findings through written reports presentations and design review participation. Clarity and rigor in your technical communication are as important as the analysis itself.
Other Responsibilities:
- Perform all activities in a safe and responsible manner and support all Environmental Health Safety & Security requirements and programs.
- Exposure to AI compiler toolchains is preferred. Familiarity with MLIR IREE TVM or similar compilation infrastructure even at a conceptual level will help you engage productively with compiler and runtime engineers and understand how graph-level and kernel-level transformations affect the workloads you analyze.
- Experience defining or refining performance KPI frameworks prior work on edge or mobile SoC workload characterization hands-on experimentation with MLIR or IREE compilation pipelines and knowledge of RISC-V architecture and Vector/Matrix extensions is a strong plus.
Required Qualifications:
- Education Graduating with Bachelors or Masters in Electrical Computer Engineering Computer Science or related field from an accredited degree program. With 0-2 years of relevant industry experience in systems engineering hardware architecture ML infrastructure or performance engineering.
- Must have at least an overall 3.0 GPA and proven good academic standing.
- Language Fluency - English (Written & Verbal)
Preferred Qualifications:
- Prior related internship or co-op experience.
- Demonstrated prior leadership experience in the workplace school projects competitions etc.
- Project management skills i.e. the ability to innovate and execute solutions that matter; the ability to navigate ambiguity.
- Strong written and verbal communication skills
- Strong planning & organizational skills
- Strong mathematical reasoning is a firm requirement. You should be able to construct and manipulate analytical performance models from first principles deriving bandwidth utilization bounds reasoning about arithmetic intensity across operator types estimating latency under queuing or pipeline constraints and interpreting numerical precision effects on model accuracy and hardware efficiency.
- The ability to move fluidly between mathematical formulation and engineering intuition is central to doing this job well.
- You are comfortable writing analysis code in Python and can build clean reproducible models. You communicate technical results well in both written and spoken form and you can hold your own in architecture discussions with specialists on either the hardware or software side.
#NCGProgramUS
This is a 100% in-office role (Dallas)
Expected Salary Range
$72000.00 - $124800.00The exact Salary will be determined based on qualifications experience and location.
If you need a reasonable accommodation for any part of the employment process please contact us by email at and let us know the nature of your request and your contact information. Requests for accommodation will be considered on a case-by-case basis. Please note that only inquiries concerning a request for reasonable accommodation will be responded to from this email address.
An offer with GlobalFoundries is conditioned upon the successful completion of pre-employment conditions as applicable and subject to applicable laws and regulations.
GlobalFoundries is fully committed to equal opportunity in the workplace and believes that cultural diversity within the company enhances its business potential. GlobalFoundries goal of excellence in business necessitates the attraction and retention of highly qualified people. Artificial barriers and stereotypic biases detract from this objective and may be illegally discriminatory.
All policies and processes which pertain to employees including recruitment selection training utilization promotion compensation benefits extracurricular programs and termination are created and implemented without regard to age ethnicity ancestry color marital status medical condition mental or physical disability national origin race religion political and/or third-party affiliation sex sexual orientation gender identity or expression veteran status or any other characteristic or category specified by local state or federal law
Required Experience:
IC
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