Jobs Companies Kard Financial, Inc. Senior Machine Learning Engineer

Sobre esta vaga de Senior Machine Learning Engineer na Kard Financial, Inc.

Kard Financial, Inc. · Remoto · Remote

Kard is building commerce media infrastructure that connects financial institutions, financial-services platforms, and merchants through data and merchant-funded rewards. As our reach expands, we are building for a step-change in scale, and for opportunities ranging from more relevant rewards and marketer intelligence to new commerce and distribution models.

About the Role

As a Senior Machine Learning Engineer, you will design, build, and operate the production systems that turn machine learning into durable product capabilities. Your scope will span personalization and recommendations, optimization and decisioning, experimentation and measurement infrastructure, model training and serving, and the shared platforms and tooling that support ML development at Kard.

This is a senior individual-contributor role on the Data team, reporting to the Director of Data & Platform. You will work primarily with other machine learning engineers and data scientists, while partnering across Data and Product to move models from experimentation through deployment and ongoing operation. You will also provide technical leadership through architecture, engineering standards, mentorship, and design and code review.

Responsibilities

  • Design, build, and operate end-to-end machine learning systems across batch and real-time workloads, including feature generation, training, evaluation, deployment, inference, and retraining.
  • Develop production capabilities for personalization, recommendations, ranking, optimization, contextual decisioning, experimentation, and measurement.
  • Build reusable ML platforms, pipelines, frameworks, and tooling that improve reproducibility, self-service, reliability, and development speed.
  • Own the operational lifecycle of production models, including observability, data and model quality, drift detection, performance monitoring, failure handling, retraining, and governance.
  • Partner with other ML practitioners to turn prototypes and research into maintainable systems, and with Data and Product teams to integrate those systems into Kard’s products and platform.
  • Provide technical leadership for ML architecture and distributed systems, making pragmatic tradeoffs among model performance, reliability, scalability, development speed, and operational complexity.

Desired Skills

  • 8+ years of professional software engineering or machine learning engineering experience.
  • A strong record of building, deploying, and operating machine learning systems in production.
  • Strong software engineering fundamentals, including system design, APIs, testing, deployment, observability, and maintainable production code.
  • Experience designing distributed systems, large-scale data-processing workflows, or high-throughput and low-latency services.
  • Fluency across the ML lifecycle, including data and feature pipelines, training, evaluation, model serving, monitoring, and retraining.
  • The ability to investigate production issues across models, data, application code, and infrastructure.
  • The judgment and autonomy to lead technically complex work, navigate ambiguity, and make architectural decisions with long-term consequences.
  • Strong collaboration and communication skills, particularly when working across machine learning, data engineering, analytics, and product disciplines.
  • A commitment to raising the technical capabilities of the broader team through mentorship, thoughtful review, documentation, and shared engineering practices.
  • Demonstrated experience matters more to us than a particular degree or industry background.
  • U.S. core business hours availability and willingness to travel for company meetings.

Bonus Points

  • Experience with personalization, recommendation, ranking, optimization, experimentation, measurement, or real-time decisioning systems.
  • Experience with technologies such as Python, Apache Spark, Databricks, MLflow, feature stores, or model-serving platforms.
  • Experience operating ML workloads on AWS, Kubernetes or Amazon EKS, and infrastructure managed through Terraform.
  • Experience building ML systems at enterprise, transaction-intensive, or regulated scale.
Remote - USA Pay Range
$160,000$190,000 USD
Why Join:

Kard recognizes the unique value each of us brings to our collective success. As part of our remote-first team, you'll have the autonomy to influence our trajectory, actively contributing to the growth of our business and the evolution of our company culture. By embodying our core values of Initiative, Openness, and Humility, you will not only witness but directly foster an inclusive and dynamic work environment, from the executive level down.

Our competitive benefit plan includes:
  • Flexible PTO, with a minimum requirement to take one day off a quarter, ten days a year, promoting mental well-being
  • Observance of 11 Federal Holidays, plus an additional day each for Black Friday and Christmas Eve (US employees only)
  • Health, Dental and Vision Insurance
  • 401k with employer match (US employees only)
  • Coworking space and WFH setup reimbursement
  • Company Offsites for planning, team-building, and networking
Kard is an equal opportunity employer and we actively encourage applicants of all genders, backgrounds, and experiences to apply. We believe that diverse perspectives enrich our workplace and drive our success.
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Como este salário de ML Engineer se compara

Esta vaga paga $175,000/yrabaixo da faixa típica para vagas de ML Engineer.

$150,150 a mediana $207,250 $278,985

Faixa típica $175,000–$250,000/yr, com base em 185 vagas de ML Engineer comparáveis na JobsRadar (pagamento anualizado em USD). Ver insights salariais de ML Engineer →

Sobre a Kard Financial, Inc.

Kard is transforming customer loyalty with our rewards-as-a-service API platform. We empower our partners, from neobanks to financial institutions and beyond, to offer tailored rewards that celebrate customers' daily transactions. Backed by $30M from industry-leading investors and seasoned experts, we are reshaping the future of customer engagement.

 

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