Senior Machine Learning Engineer - Credit
Indexed description
Plaid’s Data team is building models that improve how millions of users understand and grow their financial lives. We’re looking for machine learning engineers with experience applying state-of-the-art machine learning and modeling techniques, including natural language processing, anomaly detection, optimization, and time series forecasting, across different product areas. We value not only technical know-how, but also creativity, user empathy, and teamwork.
You’ll be a machine learning engineer in the Data org, contributing to diverse, high-impact machine learning challenges. In this role, you’ll focus on designing, building, and deploying scalable ML solutions and systems within the credit environment. You’ll lead experimentation with new modeling approaches and strategies, collaborate closely with engineers on ingesting signals and productionizing models, and help build the next wave of cash flow based underwriting. You’ll own AI and machine learning work across the full model lifecycle, from offline training to online serving and monitoring, while helping define the ML roadmap with cross-functional teams.
Responsibilities
- Build machine learning systems that empower millions of users through well-known and emerging fintech applications with access to financial services
- Experiment with cutting-edge machine learning modeling techniques across high-impact credit use cases
- Work on both 0-1 stage problems and scaling systems from 1-10
- Develop AI and machine learning models across the full lifecycle, from offline training to online serving and monitoring
- Design, build, and deploy scalable ML solutions and systems in a production environment
- Collaborate with teams across Plaid to define the machine learning roadmap
- Dive deep into data and apply data-driven decision-making in day-to-day work
- Operate with high ownership on a bottom-up driven team
- 6+ years of experience training and serving AI and machine learning models in a production environment
- Experience in fintech lending, with a strong understanding of how models are built in that space
- Experience building or working with data-intensive backend applications in large distributed systems
- Ability to code and iterate independently using tools such as Python, Spark, Jupyter notebooks, and standard machine learning libraries
- Strong ownership mindset and a track record of driving projects to business impact
- Ability to work effectively with both technical and non-technical teams
- Master’s degree or equivalent work experience in Computer Science, Mathematics, Engineering, or a closely related field
- Nice to have: data analytics and data engineering experience
Plaid is proud to be an equal opportunity employer and values diversity at our company. We do not discriminate based on race, color, national origin, ethnicity, religion or religious belief, sex (including pregnancy, childbirth, or related medical conditions), sexual orientation, gender, gender identity, gender expression, transgender status, sexual stereotypes, age, military or veteran status, disability, or other applicable legally protected characteristics. We also consider qualified applicants with criminal histories, consistent with applicable federal, state, and local laws. Plaid is committed to providing reasonable accommodations for candidates with disabilities in our recruiting process. If you need any assistance with your application or interviews due to a disability, please let us know at [email protected].
Please review our Candidate Privacy Notice here.
Additional compensation in the form(s) of equity and/or commission are dependent on the position offered. Plaid provides a comprehensive benefit plan, including medical, dental, vision, and 401(k). Pay is based on factors such as (but not limited to) scope and responsibilities of the position, candidate's work experience and skillset, and location. Pay and benefits are subject to change at any time, consistent with the terms of any applicable compensation or benefit plans.
Compensation Range: $228,960 - $315,360
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