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Senior Data Scientist

Оценка ИИ

SoFi — престижный работодатель в сфере финтеха с сильной корпоративной культурой. Вакансия предлагает работу над социально значимыми задачами (борьба с преступностью) с использованием современного стека технологий и конкурентоспособных бенефитов.


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Сложность вакансии

ЛегкоСложно
Оценка ИИ

Роль требует глубоких знаний как в области Data Science (Python, SQL, ML), так и в специфической сфере комплаенса (AML/BSA). Высокая сложность обусловлена необходимостью работы с регуляторными стандартами и сложной архитектурой данных в финансовом секторе.

Анализ зарплаты

Медиана175 000 $
Рынок150 000 $ – 210 000 $
Оценка ИИ

Зарплата для Senior Data Scientist в Сан-Франциско (даже с учетом канадского кода в ATS, локация указана как SF) является одной из самых высоких на рынке. Предлагаемая роль в сфере финтех-комплаенса обычно оплачивается выше среднего из-за узкой специализации.

Сопроводительное письмо

I am writing to express my strong interest in the Senior Data Scientist position within the Compliance team at SoFi. With over [Number] years of experience in financial services and a deep specialization in BSA/AML and fraud modeling, I am impressed by SoFi’s commitment to using mobile-first technology to revolutionize personal finance. My background in developing and optimizing transaction monitoring models using Python and SQL, combined with a solid understanding of model risk management (SR 11-7), aligns perfectly with the requirements of this role.

In my previous experience, I have successfully led the design of advanced AML models and managed the full model lifecycle, from data integrity assessment to regulatory documentation. I am particularly drawn to this role because it offers the opportunity to architect machine learning solutions that have a direct impact on financial safety. I am confident that my technical expertise in cloud-based computing and my track record in AML governance will allow me to contribute effectively to SoFi’s mission of helping members reach their financial goals securely.

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Присоединяйтесь к SoFi и используйте свои навыки в Data Science для борьбы с финансовыми преступлениями в одном из самых инновационных финтехов!

Описание вакансии

Employee Applicant Privacy Notice

Who we are:

Shape a brighter financial future with us.

Together with our members, we’re changing the way people think about and interact with personal finance.

We’re a next-generation financial services company and national bank using innovative, mobile-first technology to help our millions of members reach their goals. The industry is going through an unprecedented transformation, and we’re at the forefront. We’re proud to come to work every day knowing that what we do has a direct impact on people’s lives, with our core values guiding us every step of the way. Join us to invest in yourself, your career, and the financial world.

The role:

The Compliance Senior Data Scientist will be responsible for assisting the Anti-Money

Laundering Compliance program with model development, model optimization, model

validation, management information reporting, AML system integration, AML data

infrastructure and AML data architecture to effectively fight financial crime. Additionally,

this role will also support AML governance initiatives including risk assessments and

internal/external inquiries.

What you’ll do:

  • Facilitate AML model development, implementation, optimization, assessment

and validation of risk-based customer screening, transaction screening,

transaction monitoring and AML customer risk rating covering multiple product

lines, including banking, brokerage and lending to ensure sound risk coverage

across the enterprise.

  • Maintain, test and configure AML vendor solutions to ensure conceptually sound

design, proper implementation, and acceptable model performance.

  • Research, compile and evaluate large sets of data to assess quality, integrity and

completeness to determine suitability for AML model development.

  • Architect and lead the design of advanced AML models utilizing machine learning

and statistical modeling methods for supervised and unsupervised learning.

  • Exercise flexibility in selecting model architectures, algorithms, third-party

libraries, and development workflows, provided they align with project objectives

and organizational requirements.

  • Ensure AML compliance and regulatory requirements are embedded in the

model design.

  • Document modeling methodology, data sources, assumptions, and validation

results.

  • Lead governance and quality control across the full AML model lifecycle including

code reviews, validation of methodology, input data integrity, and performance

metrics.

  • Ensure adherence to the organization’s established ML framework, coding

conventions, documentation standards, and model risk management policies,

embedding AML compliance and regulatory requirements into design and

deployment.

  • Oversee documentation and review processes for internal model validation,

external regulatory examinations, and cross-functional approvals, while

supporting resolution of development blockers and coordinating with key

stakeholders.

  • Develop governance documentation related to tuning efforts, parameter changes

and data validation for AML transaction monitoring to ensure a comprehensive

audit trail is maintained.

  • Track and report results of tuning and optimization activities and model

performance to senior management.

  • Develop robust management information dashboards displaying real-time or near

real-time AML metrics.

  • Partner with and advise the AML Governance Unit by providing necessary data

for AML Risk Assessments, internal/external audit examinations and other

regulatory requirements.

What you’ll need:

  • Bachelor’s Degree or Master’s Degree in Statistics, Computer Science,

Mathematics, Finance, Computer Science, Engineering or other relevant areas.

  • 3+ years of experience in the finance industry focusing on BSA/AML, OFAC, or

fraud modeling/analytics.

  • Statistical/data analytical skills, including data quality validation, and predictive

modeling experience in SQL and Python.

  • Knowledge of and ability to leverage traditional databases, cloud-based

computing, and distributed computing.

  • Track record of leading AML governance-related initiatives, such as risk

assessments, internal/external audits and other regulatory requirements. 

  • Demonstrated ability to communicate effectively with all levels of the organization

and across different business lines.

Nice to Have:

  • Knowledge of AML regulations and the USA PATRIOT Act.
  • Familiarity with regulatory guidance on Model Risk Management (Federal

Reserve SR Letter 11-7, OCC Bulletin 2011-12, FDIC FIL 22-2017, DFS504)

  • Experience with data visualization (e.g., Tableau)
  • Experience with data monitoring systems (e.g., DataDog, Monte Carlo)
  • Experience with cloud data infrastructure (e.g., Snowflake)
  • Experience with automated transaction monitoring (e.g., Verafin)
  • Experience with customer/transaction screening (e.g., LexisNexis)
  • Experience with infrastructure automation software (e.g., Terraform)
  • Familiarity with virtualization and containerization (e.g., Docker)
  • Familiarity with container orchestration (e.g., Kubernetes)
  • CAMS certification preferred

Compensation and Benefits

The base pay range for this role is listed below. Final base pay offer will be determined based on individual factors such as the candidate’s experience, skills, and location.

To view all of our comprehensive and competitive benefits, visit our Benefits at SoFi page!

SoFi provides equal employment opportunities (EEO) to all employees and applicants for employment without regard to race, color, religion (including religious dress and grooming practices), sex (including pregnancy, childbirth and related medical conditions, breastfeeding, and conditions related to breastfeeding), gender, gender identity, gender expression, national origin, ancestry, age (40 or over), physical or medical disability, medical condition, marital status, registered domestic partner status, sexual orientation, genetic information, military and/or veteran status, or any other basis prohibited by applicable state or federal law.
The Company hires the best qualified candidate for the job, without regard to protected characteristics.
Pursuant to the San Francisco Fair Chance Ordinance, we will consider for employment qualified applicants with arrest and conviction records.
New York applicants: Notice of Employee Rights
SoFi is committed to an inclusive culture. As part of this commitment, SoFi offers reasonable accommodations to candidates with physical or mental disabilities. If you need accommodations to participate in the job application or interview process, please let your recruiter know or email accommodations@sofi.com.
Due to insurance coverage issues, we are unable to accommodate remote work from Hawaii or Alaska at this time.

Internal Employees

If you are a current employee, do not apply here - please navigate to our Internal Job Board in Greenhouse to apply to our open roles.

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Навыки

  • Tableau
  • Python
  • Terraform
  • Machine Learning
  • SQL
  • Statistics
  • Kubernetes
  • Docker
  • Snowflake
  • Predictive Modeling
  • Datadog
  • AML
  • Monte Carlo

Возможные вопросы на собеседовании

Проверка опыта работы с конкретными нормативными актами, упомянутыми в вакансии.

Как вы применяли принципы руководства SR 11-7 при валидации моделей AML в вашей предыдущей практике?

Оценка технических навыков в контексте специфики AML.

Какие методы машинного обучения (supervised/unsupervised) вы считаете наиболее эффективными для выявления аномалий в транзакциях и почему?

Проверка умения работать с качеством данных.

Опишите ваш процесс оценки качества и полноты данных перед началом разработки модели AML. С какими типичными проблемами вы сталкивались?

Оценка навыков взаимодействия с заинтересованными сторонами.

Как вы объясняете сложные результаты работы ML-моделей сотрудникам отдела комплаенса или внешним аудиторам, не имеющим технического образования?

Проверка опыта работы с современным стеком.

Был ли у вас опыт работы с облачными инфраструктурами (например, Snowflake) для масштабирования аналитики данных? Какие преимущества это дало?

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