채용

Senior Machine Learning Engineer
San Francisco, CA, New York, NY, Portland, OR, or Remote within Canada or United States
·
Remote
·
Full-time
·
2mo ago
필수 스킬
Python
TypeScript
React
SQL
Redis
Kafka
Airflow
Machine Learning
Before 1965, it was extremely difficult and time-consuming to analyze complicated signals, like radio or images. You could solve it, but you had to throw a ton of compute at it. That all changed with the invention of the Fast Fourier transform, which could efficiently break that signal down into the frequencies that are a part of it. The Risk Onboarding team is working on efficiently reviewing customers’ applications without compromising on quality. We are the front line of defense for preventing money laundering and financial crimes, building systems to verify that someone is who they say they are and that we are allowed to do business with them.
At Mercury, we are committed to crafting an exceptional banking experience for startups. Our team is passionately focused on ensuring our products create a safe environment that meets the needs of our customers, administrators, and regulators.
**Mercury is a fintech company, not an FDIC-insured bank. Banking services provided through Choice Financial Group and Column N.A., Members FDIC.
As part of this role, you will:
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Partner with data science & engineering teams to design and deploy ML & Gen AI microservices, primarily focusing on automating reviews
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Work with a full-stack engineering team to embed these services into the overall review experience, including human in the loop, escalations, and feeding human decisions back into the service
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Implement testing, observability, alerting, and disaster recovery for all services
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Implement tracing, performance, and regression testing
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Feel a strong sense of product ownership and actively seek responsibility – we often self-organize on small/medium projects, and we want someone who’s excited to help shape and build Mercury’s future
The ideal candidate for the role has:
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7+ years of experience in roles like machine learning engineering, data engineering, backend software engineering, and/or devops
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Expertise with:
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A full modern data stack: Snowflake, dbt, Fivetran, Airbyte, Dagster, Airflow
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SQL, dbt, Python
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OLAP / OLTP data modelling and architecture
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Key-value stores: Redis, dynamoDB, or equivalent
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Streaming / real-time data pipelines: Kinesis, Kafka, Redpanda
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API frameworks: FastAPI, Flask, etc.
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Production ML Service experience
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Working across full-stack development environment, with experience transferable to Haskell, React, and TypeScript
The total rewards package at Mercury includes base salary, equity (stock options/RSUs), and benefits. Our salary and equity ranges are highly competitive within the SaaS and fintech industry and are updated regularly using the most reliable compensation survey data for our industry. New hire offers are made based on a candidate’s experience, expertise, geographic location, and internal pay equity relative to peers.
Our target new hire base salary ranges for this role are the following:
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US employees (any location): $200,700 - $250,900
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Canadian employees (any location): CAD 189,700 - 237,100
Mercury values diversity & belonging and is proud to be an Equal Employment Opportunity employer. All individuals seeking employment at Mercury are considered without regard to race, color, religion, national origin, age, sex, marital status, ancestry, physical or mental disability, veteran status, gender identity, sexual orientation, or any other legally protected characteristic. We are committed to providing reasonable accommodations throughout the recruitment process for applicants with disabilities or special needs. If you need assistance, or an accommodation, please let your recruiter know once you are contacted about a role.
We use Covey as part of our hiring and / or promotional process for jobs in NYC and certain features may qualify it as an AEDT. As part of the evaluation process we provide Covey with job requirements and candidate submitted applications. We began using Covey Scout for Inbound on January 22, 2024. Please see the independent bias audit report covering our use of Covey here.
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Mercury 소개

Mercury
AcquiredMercury was a brand of medium-priced automobiles that was produced by American manufacturer Ford Motor Company between the 1939 and 2011 motor years. Created by Edsel Ford in 1938, Mercury was established to bridge the gap between the Ford and Lincoln model lines within Ford Motor Company.
1,001-5,000
직원 수
Dearborn
본사 위치
리뷰
3.9
10개 리뷰
워라밸
4.2
보상
2.8
문화
4.3
커리어
3.2
경영진
2.5
72%
친구에게 추천
장점
Flexible work hours and remote options
Supportive team and collaborative coworkers
Good benefits and job security
단점
Below average compensation and salary
Limited career advancement and promotion competition
High workload and long hours during peak times
연봉 정보
34개 데이터
Mid/L4
Senior/L5
Mid/L4 · LEAD DATA ENGINEER
1개 리포트
$182,818
총 연봉
기본급
$140,629
주식
-
보너스
-
$182,818
$182,818
면접 경험
1개 면접
난이도
3.0
/ 5
소요 기간
14-28주
면접 과정
1
Application Review
2
Recruiter Screen
3
Technical Interview
4
Coding Exercise
5
Final Interview
6
Offer
자주 나오는 질문
Coding/Algorithm
Technical Knowledge
Behavioral/STAR
Past Experience
뉴스 & 버즈
OCC conditionally approves Mercury charter application - FinTech Futures
FinTech Futures
News
·
5d ago
Phoenix Mercury players really enjoyed time spent with girls in Clinic on Friday - Dakota News Now
Dakota News Now
News
·
6d ago
Mercury Wins Conditional OCC Approval For Banking License - PYMNTS.com
PYMNTS.com
News
·
1w ago
The Mercury’s Do This, Do That: Your Top Events for April 27-May 3 - Portland Mercury
Portland Mercury
News
·
1w ago