? Apply Now: Senior Lead Machine Learning Engineer - Garage
Company: Capital One
Location: Wichita Falls
Posted on: July 2, 2025
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Job Description:
Job Description Senior Lead Machine Learning Engineer - Garage
As a Capital One Machine Learning Engineer (MLE), you'll be part of
an Agile team dedicated to productionizing machine learning
applications and systems at scale. You’ll participate in the
detailed technical design, development, and implementation of
machine learning applications using existing and emerging
technology platforms. You’ll focus on machine learning
architectural design, develop and review model and application
code, and ensure high availability and performance of our machine
learning applications. You'll have the opportunity to continuously
learn and apply the latest innovations and best practices in
machine learning engineering. About the team: As part of FS AI labs
you will be working on AI initiatives within Financial Services
with a focus on Applied AI and Machine Learning (AI/ML), Generative
AI, Natural Language Processing (NLP), and Responsible AI. The
primary objective of FS AI Labs is to drive the research and
delivery of innovative AI and ML use cases that leverage these
cutting-edge technologies. You will work on exploring new
frontiers, build prototypes, and deliver transformative AI use
cases that drive Capital One Financial Services business growth and
enhance customer experience. What you’ll do in the role: - The MLE
role overlaps with many disciplines, such as Ops, Modeling, and
Data Engineering. In this role, you'll be expected to perform many
ML engineering activities, including one or more of the following:
- Design, build, and/or deliver ML models and components that solve
real-world business problems, while working in collaboration with
the Product and Data Science teams. - Inform your ML infrastructure
decisions using your understanding of ML modeling techniques and
issues, including choice of model, data, and feature selection,
model training, hyperparameter tuning, dimensionality,
bias/variance, and validation). - Solve complex problems by writing
and testing application code, developing and validating ML models,
and automating tests and deployment. - Collaborate as part of a
cross-functional Agile team to create and enhance software that
enables state-of-the-art big data and ML applications. - Retrain,
maintain, and monitor models in production. - Leverage or build
cloud-based architectures, technologies, and/or platforms to
deliver optimized ML models at scale. - Construct optimized data
pipelines to feed ML models. - Leverage continuous integration and
continuous deployment best practices, including test automation and
monitoring, to ensure successful deployment of ML models and
application code. - Ensure all code is well-managed to reduce
vulnerabilities, models are well-governed from a risk perspective,
and the ML follows best practices in Responsible and Explainable
AI. - Use programming languages like Python, Scala, or Java. Basic
Qualifications: - Bachelor’s degree - At least 8 years of
experience designing and building data-intensive solutions using
distributed computing (Internship experience does not apply) - At
least 4 years of experience programming with Python, Scala, or Java
- At least 3 years of experience building, scaling, and optimizing
ML systems - At least 2 years of experience leading teams
developing ML solutions Preferred Qualifications: - Master's or
doctoral degree in computer science, electrical engineering,
mathematics, or a similar field - Experience developing and
deploying ML solutions in a public cloud such as AWS, Azure, or
Google Cloud Platform - 4 years of on-the-job experience with an
industry recognized ML framework such as scikit-learn, PyTorch,
Dask, Spark, or TensorFlow - 3 years of experience developing
performant, resilient, and maintainable code - 3 years of
experience with data gathering and preparation for ML models - 3
years of people management experience - ML industry impact through
conference presentations, papers, blog posts, open source
contributions, or patents - 3 years of experience building
production-ready data pipelines that feed ML models - Ability to
communicate complex technical concepts clearly to a variety of
audiences Capital One will consider sponsoring a new qualified
applicant for employment authorization for this position. The
minimum and maximum full-time annual salaries for this role are
listed below, by location. Please note that this salary information
is solely for candidates hired to perform work within one of these
locations, and refers to the amount Capital One is willing to pay
at the time of this posting. Salaries for part-time roles will be
prorated based upon the agreed upon number of hours to be regularly
worked. Plano, TX: $204,900 - $233,800 for Sr. Lead Machine
Learning Engineer Candidates hired to work in other locations will
be subject to the pay range associated with that location, and the
actual annualized salary amount offered to any candidate at the
time of hire will be reflected solely in the candidate’s offer
letter. This role is also eligible to earn performance based
incentive compensation, which may include cash bonus(es) and/or
long term incentives (LTI). Incentives could be discretionary or
non discretionary depending on the plan. Capital One offers a
comprehensive, competitive, and inclusive set of health, financial
and other benefits that support your total well-being. Learn more
at the Capital One Careers website. Eligibility varies based on
full or part-time status, exempt or non-exempt status, and
management level. This role is expected to accept applications for
a minimum of 5 business days. No agencies please. Capital One is an
equal opportunity employer committed to diversity and inclusion in
the workplace. All qualified applicants will receive consideration
for employment without regard to sex (including pregnancy,
childbirth or related medical conditions), race, color, age,
national origin, religion, disability, genetic information, marital
status, sexual orientation, gender identity, gender reassignment,
citizenship, immigration status, protected veteran status, or any
other basis prohibited under applicable federal, state or local
law. Capital One promotes a drug-free workplace. Capital One will
consider for employment qualified applicants with a criminal
history in a manner consistent with the requirements of applicable
laws regarding criminal background inquiries, including, to the
extent applicable, Article 23-A of the New York Correction Law; San
Francisco, California Police Code Article 49, Sections 4901-4920;
New York City’s Fair Chance Act; Philadelphia’s Fair Criminal
Records Screening Act; and other applicable federal, state, and
local laws and regulations regarding criminal background inquiries.
If you have visited our website in search of information on
employment opportunities or to apply for a position, and you
require an accommodation, please contact Capital One Recruiting at
1-800-304-9102 or via email at
RecruitingAccommodation@capitalone.com. All information you provide
will be kept confidential and will be used only to the extent
required to provide needed reasonable accommodations. For technical
support or questions about Capital One's recruiting process, please
send an email to Careers@capitalone.com Capital One does not
provide, endorse nor guarantee and is not liable for third-party
products, services, educational tools or other information
available through this site. Capital One Financial is made up of
several different entities. Please note that any position posted in
Canada is for Capital One Canada, any position posted in the United
Kingdom is for Capital One Europe and any position posted in the
Philippines is for Capital One Philippines Service Corp.
(COPSSC).
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