Machine Learning Engineer
Attain
Chicago, IL; New York, NY; Redwood City, CA About Attain Built for consumers and companies, alike. Klover's engineering team powers one of the fastest-growing fintech platforms in the U.S., supporting over one million active users each month. Our systems process and move more than $1.5 billion annually, enabling real-time access to financial tools, rewards, and services that help people improve their day-to-day lives. As part of this team, you'll help design, build, and scale the systems that underpin Klover's core products and platform. You'll work on high-impact, production-grade systems that prioritize reliability, security, and performance, and that integrate with a broad ecosystem of internal and external services. The work you do will directly shape how users interact with Klover's products, access their money, and experience transparent, low-fee financial services. Klover engineers collaborate closely with colleagues across backend, frontend, data science, and product teams to deliver scalable, high-quality solutions for a rapidly growing user base. You'll have the opportunity to work with modern technologies and architectures while helping define and evolve the next generation of inclusive, data-powered financial products—building systems and interfaces that emphasize reliability, privacy, and performance at scale. About the role Attain is seeking a Senior/Staff Machine Learning Engineer to own our production ML systems and build out the MLOps platform infrastructure that powers our suite of B2C financial services. This role will be highly hands-on and infrastructure-first, focused on designing, building, and operating the pipelines, platforms, and tooling that take models from experiment to reliable production service across our app portfolio—and on keeping those systems healthy, performant, and cost-effective once they're live. You will work on the systems and infrastructure behind our high-impact predictive models, including the pipelines, feature infrastructure, model-serving, CI/CD, and observability that keep them reproducible, automated, monitored, and fast in production. Day to day, this means building the platform and automation that let us move fast without sacrificing performance—streamlining retraining and rollouts, tuning systems for speed and efficiency, and building the metrics and alerting that give us confidence to ship—while enabling data scientists to deploy and iterate on models quickly and safely. The ideal candidate combines strong software and platform engineering fundamentals with practical MLOps experience building and operating production ML systems from scratch, and treats modern AI tooling as a first‑class part of how the work gets done—directing coding agents to write, test, and ship infrastructure code, with the judgment to know when to verify their work. Chicago, IL: 4 days in-office; 1 day remote What a typical week might look like Build, deploy, and operate the production ML systems at the core of our EWA product, with a focus on reliability, performance, and fast, high-quality execution Build and improve the pipelines and serving infrastructure behind our predictive models across consumer decisioning, fraud, churn, transaction intelligence, and other business‑critical use cases Own the production side of the model lifecycle: feature pipelines, deployment, CI/CD, monitoring, and automated retraining Build and maintain reusable modeling pipelines, feature engineering systems, model‑serving infrastructure, and production‑quality code, deployed via Terraform and CI/CD into our GCP + Kubernetes environment Instrument models and pipelines with monitoring, alerting, and automated retraining—defining the metrics and dashboards (e.g., Prometheus/Grafana) that surface drift and degradation and give us confidence to ship Direct AI coding agents as a force multiplier to write, test, and ship infrastructure and pipeline code—and apply strong judgment about when to trust their output and when to verify it yourself Automate manual, repetitive steps in the ML lifecycle so the team can move faster without sacrificing reliability Partner with data scientists to give them fast, safe paths to deploy, iterate on, and retrain models in production Collaborate with analysts, platform engineers, product managers, and business stakeholders to deliver ML systems with quality, efficiency, and precision Identify new areas where platform improvements, automation, and MLOps tooling can improve product velocity and business outcomes Preferred Qualifications 5+ years of direct experience as a Machine Learning Engineer, ML Platform Engineer, MLOps Engineer, Applied Scientist or similar role building and operating production ML systems Strongly preferred: degree in STEM field such as Computer Science, Statistics, Economics, Mathematics, Engineering, Physics, Operations Research, or a related quantitative field Demonstrated ability to apply critical thinking, abstract reasoning, and sound engineering judgment to complex, ambiguous technical and business problems Strong expertise deploying, serving, monitoring, and operating ML models in production—including feature engineering systems, training/serving parity, retraining, and model performance diagnostics Experience building low‑latency online model serving (e.g., gRPC/microservices, ideally with a service mesh such as Istio) for real‑time decisioning Hands‑on MLOps experience: pipelines, CI/CD for ML, containerization (Docker), orchestration (Kubernetes), infrastructure‑as‑code (e.g., Terraform), and workflow schedulers (e.g., Airflow) Experience with model versioning, reproducibility, and safe progressive rollout (shadow, canary, champion‑challenger) of models in production Demonstrated fluency directing AI coding agents (e.g., Claude Code, Cursor, or similar) to build, operate, and debug real ML systems—with experienced judgment on verifying their work A track record of replacing manual, repetitive ML workflows with durable automation Experience building the infrastructure behind high‑impact applied ML use cases such as credit decisioning, risk modeling, fraud, churn, or consumer behavior modeling Familiarity with model explainability, auditability, and the compliance considerations of regulated decisioning (a plus for credit/fintech contexts) Strong software and platform engineering fundamentals Strong Python coding skills, with the ability to build pipelines, services, and production‑quality tooling from scratch; experience with a systems or backend language such as Go or Rust is a plus Experience with distributed computing and GPU‑accelerated workloads (e.g., Spark, Ray, Dask, or distributed training/inference), including scaling data and model pipelines across clusters Strong SQL skills and experience with cloud data warehouses and operational databases (e.g., BigQuery, Spanner), including working with large, messy, real‑world datasets Experience with observability tools such as Prometheus, Grafana, or Datadog Experience with cloud computing services or platforms; GCP preferred Willingness to roll up your sleeves and wear multiple hats across engineering, infrastructure, and ML execution based on business needs Strong written and verbal communication skills, including the ability to explain technical topics to both technical and non‑technical audiences We are excited to hear from you. #J-18808-Ljbffr
- ...prioritized improvement roadmap Design active-learning loops that combine model sweeps, LLM-... ...and calibration, Data and Product Engineering on pipeline and review systems, and Security... ...If You have 3+ years of professional machine learning or software engineering...SuggestedFull timeShift work
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...We are building an AI-driven simulation software stack for engineering and manufacturing across advanced industries. By enabling high... ...and career goals. Who We're Looking For As a Machine Learning Engineer in Delivery, you are a problem solver who stays anchored...SuggestedFull timeWork at officeWork from homeFlexible hours- ...talent in tech, this could be the career-defining opportunity you've been waiting for. The Role This is a founding Machine Learning Engineer role for our conversational AI coaching product designed for Fortune 500 enterprises, reporting into our . In this role...SuggestedFull timeWork at officeRemote workWork from home
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...or throughout your everyday life, CLEAR unlocks the magic of frictionless experiences. We’re looking for an experienced Machine Learning Engineer to help us build the next generation of products which will go beyond just ID and enable our members to leverage the power...Full timeFlexible hours$40k - $200k
...to be the future! If you are craving to learn something new every day while working at... ...looking for a stellar & highly ambitious ML engineer as core employees to help build complex... ...experience developing architectures with machine learning frameworks such as PyTorch ~...Full timeVisa sponsorshipFlexible hours- ...founder created Palantir's first AI platform and built the analytics engine behind $100M+ contracts. Our founding engineers led Foundry's... ...path toward technical leadership and system ownership. Learn by building production systems that power real financial research...Permanent employmentFull timeWork at office
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...keep millions of users listening by making great recommendations to each and every one of them. We are looking for a Machine Learning Engineer to join the Personalization (PZN) team - an area of hardworking engineers that are passionate about understanding what...Full timeFlexible hours- ...engaged audiences. Our Team The Decisioning & Optimization engineering team owns the systems that determine which ad wins every... ...Benefits here . Netflix is a unique culture and environment. Learn more here . Inclusion is a Netflix value and we strive...Hourly payFull timeImmediate startFlexible hoursShift work
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$209k - $313k
...express themselves, live in the moment, learn about the world, and have fun together.The... ...Saturn, and other digital services.Snap Engineering teams build fun and technically... ...privacy at the forefront.We’re looking for a Machine Learning Engineer to join Snap Inc!What...Full timeLive inWork at officeLocal area$173k - $259k
...express themselves, live in the moment, learn about the world, and have fun together.The... ...Saturn, and other digital services.Snap Engineering teams build fun and technically... ...privacy at the forefront.We’re looking for a Machine Learning Engineer to join Snap Inc!What...Full timeLive inWork at officeLocal area$173k - $259k
...empowering people to express themselves, live in the moment, learn about the world, and have fun together.The Company operates... ..., and wearable devices like Spectacles.We're looking for a Machine Learning Engineer to join our Generative ML team!What you’ll do:Develop...Full timeLive inWork at officeLocal areaWorldwide$205k - $235k
...something that should “just come naturally,” but as a skill to learn and practice. Founded by Dr. Becky Kennedy and Dr. Erica... ...of change.The OpportunityGood Inside is seeking a Machine Learning Engineer to join our Engineering team. This is not a research or data...$200k - $300k
Virtu’s Research Technology team is looking for an experienced Machine Learning Engineer to join a small group of technologists whose primary function is building the infrastructure that powers our quantitative researchers. This is a unique opportunity to work at the intersection...$184.05k - $262.93k
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$195k - $408k
...growing Roku's advertising business. The mission of the Ad Engineering Team is to build this platform. The Ad Serving team designs,... ...critical to the business. We are looking for a staff-level machine learning engineer with deep research and data science expertise to lead...Full timeWork at officeLocal areaRemote workMonday to ThursdayFlexible hours$213k - $263k
...billions in simulation across 15+ U.S. states. Waymo's Systems Engineering team works together to blend software and hardware systems in... ...and dynamics ~ Proficiency in C++ and Python ~ Ability to learn and utilize new frameworks quickly, employing AI tools or otherwise...Full timeRemote work$244k - $320k
...email, and push notifications, our AI-powered personalization engine delivers bespoke experiences that drive performance, revenue,... ...'s Corporate Equality Index ! About the Role Our Machine Learning Engineering team powers personalized experiences for hundreds...Full time$184.05k - $262.93k
...personalization at Spotify by pioneering novel Reinforcement Learning (RL) methods for Large Language Models (LLMs). We drive... ...powered recommendation experience. We are looking for a Machine Learning Engineer to make impactful changes to our recommendations and...Full timeWork from homeFlexible hours$184.05k - $262.93k
...them. You’ll join a team working at the intersection of machine learning, music understanding, and user experience. We focus on generating... ...across user research, design, data science, product, and engineering Prototype new ML approaches and bring them into...Full timeWork from homeWorldwideFlexible hours$184.05k - $262.93k
...underlying intelligence that powers it. By combining cutting-edge machine learning, recommendation systems, and product thinking, the team... ...listeners around the world. As a Senior Machine Learning Engineer, you will help shape the future of personalized discovery and...Remote jobFull timeFlexible hours- ...growth phase backed by top-tier investors and exceptional product-market fit. About the role We are seeking a Senior Machine Learning Engineer to strengthen our element classification system - working closely with data scientists and data annotators to ship and...Full timeWork at officeWork from homeFlexible hours
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$94 - $104 per hour
...on building next‑generation AI capabilities across business‑critical platforms and requires both strategic thinking and hands‑on engineering expertise. You will shape architecture, influence technical direction, and accelerate innovation across multiple enterprise initiatives...Hourly payContract work
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