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Senior Software Engineer, Applied ML
$200k – $250k/yr New York, US on-site full time senior Apr 16, 2026
About this role
Current is a leading consumer fintech platform transforming financial access for everyday Americans with over 6 million members. We provide access to financial solutions that seamlessly work together to solve the needs of our members and enable all Americans to build better financial futures. Based in NYC, our results-driven environment drives us to build better products, grow faster and empower everyone on our team to have an impact on our business and mission to improve financial outcomes.
Current’s Engineering team is dedicated to building our products and infrastructure. With our applications running on Google Cloud Kubernetes Engine, we support a proprietary banking core that can scale to handle millions of transactions a day. Our stack includes MongoDB and Spanner for persistence, Pub/Sub for asynchronous event processing, Dataflow for data transformation paired with BigQuery and Google Cloud Storage for data storage and analytics. Our backend services are written in Java and our data pipelines are built in Scala.
We work across a broad set of domains, including user-facing products like liquidity offerings and reward programs, infrastructure for machine learning and experimentation, real-time fraud detection and identity protection, and large-scale transaction processing across multiple payment rails.
About the Role
We're looking for a Senior Software Engineer to join our team and apply ML/AI techniques to solve business problems at scale. You'll find creative ways to apply ML where it can move the needle, leverage existing tooling and frameworks, and ship production solutions that deliver measurable impact. The ideal candidate is a strong backend engineer with hands-on ML experience who thrives on turning business problems into production ML solutions. This role has a salary range of $200,000 - $250,000.
What You'll Work On
Our work spans many areas, and here are a few examples of active problem spaces:
Predictive models for user conversion that directly reduce acquisition costs
Mining customer and transaction data to surface insights that shape product strategy
Applying LLMs creatively to interpret customer behavior and make sense of unstructured data
Real-time fraud detection, identity protection, and transaction decisioning
Responsibilities
Owning end-to-end delivery of ML-powered initiatives from problem discovery through system design to production launch
Building and evolving systems across the backend and ML stack, from microservices and data pipelines to feature engineering and model tooling
Evolving org-wide engineering standards for architecture, testing, and monitoring practices and documentation
Mentoring engineers through code and architecture reviews, raising the technical bar of the team
Partnering with data science, product engineering, and infrastructure teams to shape the data and ML strategy and drive adoption of ML solutions across products
Required Qualifications
5+ years of software engineering experience, with backend experience using a JVM language, preferably Java
2+ years of building and deploying ML models in production
Bachelor's or Master's degree in Computer Science, Engineering, Mathematics, or a related field
Solid understanding of algorithms, data structures and object-oriented design
Experience with cloud-hosted services, like AWS or GCP
Experience with relational and NoSQL databases
Experience working closely with data science and infrastructure teams
Strong problem-solving and communication skills
Nice-to-Have Qualifications
Experience with Scala or Python
Hands-on experience applying LLMs or other AI tooling to production use cases
Exposure to ML platforms such as SageMaker, Vertex AI, or Kubeflow
Benefits
Competitive salary
Meaningful equity in the form of stock options
401(k) plan
Discretionary performance bonus program
Biannual performance reviews
Medical, Dental and Vision premiums covered at 100% for you and your dependents
Flexible time off and paid holidays
Generous parental leave policy
Commuter benefits
Fitness benefits
Healthcare and Dependent care FSA benefit
Employee Assistance Programs focused on mental health
Healthcare advocacy program for all employees
Access to mental health apps
Team building activities
Our modern Chelsea-based office with open floor plan, stocked kitchen, and catered lunches
Offices: New York, New York, United States (New York);