Principal Full Stack Engineer

Fidelity Investments

$130K — $155K *
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science, Engineering, IT or related field plus 5 years experience, or Master's degree plus 3 years experience in related role.
  • Experience building large-scale data analytics and ML solutions on AWS and Snowflake Cloud Data Warehouse.
  • Expertise in building scalable Cloud-based Big Data applications using various AWS services (e.g., S3, EMR, Kinesis).
  • Skilled in maintaining CI/CD pipelines using tools like Jenkins and Stash.
  • Proficiency in Python, SQL, and advanced data modeling techniques.

Responsibilities

  • Plan, create, and maintain data architectures aligned with business requirements.
  • Formulate datasets optimized for storage and processing.
  • Develop frameworks for batch and near real-time data ingestion and monitoring.
  • Collaborate with architects to design new project architectures as a subject matter expert.
  • Create and review data modeling standards and guidelines for developers.
  • Automate manual tasks and support existing data processes.
  • Facilitate data cleansing and quality enhancements.

Benefits

  • Comprehensive health benefits and wellness programs.
  • 401(k) plan with company matching contributions.
  • Professional development and continuing education support.
  • Opportunity to work in a dynamic, collaborative environment.
  • Employee stock purchase program.
Full Job Description

Job Description:

Note: Fidelity will not provide immigration sponsorship for this position.

Position Description:

Designs and implements batch and real-time data collection solutions using technologies (Python, Event Collection, or similar frameworks). Collaborates with engineering team to define the overall system architecture, ensuring scalability, fault tolerance, and performance optimization. Influences and builds vision with product managers, team members, customers, and other engineering teams to solve complex problems for building enterprise-class business applications. Evaluates trade-offs between correctness, robustness, performance, and customer impact to ensure we build the right solution.

Primary Responsibilities:

  • Uses a systematic approach to plan, create, and maintain data architectures while also aligning with business requirements.
  • Formulates a set of dataset process and store optimized data.
  • Designs and develops generic frameworks for batch and near real-time data ingestion, data quality checks, monitoring and reporting.
  • Works with architects as a subject matter expert of the current application to design new architectures for the projects.
  • Writes Data Modelling standard guidelines for developers and reviews their design and architecture.
  • Automates manual tasks and eliminates manual intervention.
  • Supports and maintains existing data and processes to eliminate gaps in datasets.
  • Supports the building of data flow channels and processing systems to extract, transform, load, and integrate data from various sources.
  • Stores data in unstructured/structured formats, and manages and monitors data.
  • Tracks production processes stability and ensures cost effectiveness and enhancements.
  • Facilitates data cleansing, enrichment, and data quality enhancements.

Education and Experience:

Bachelor’s degree in Computer Science, Engineering, Information Technology, Information Systems or a closely related field (or foreign education equivalent) and five (5) years of experience as a Principal Full Stack Engineer (or closely related occupation) building large-scale data analytics and ML solutions on AWS and Snowflake Cloud Data Warehouse.

Or, alternatively, Master’s degree in Computer Science, Engineering, Information Technology, Information Systems or a closely related field (or foreign education equivalent) and three (3) years of experience as a Principal Full Stack Engineer (or closely related occupation) building large-scale data analytics and ML solutions on AWS and Snowflake Cloud Data Warehouse.

Skills and Knowledge:

Candidate must also possess:

  • Demonstrated Expertise (“DE”) architecting, designing, and building highly scalable Cloud-based Big Data applications according to business user requirements in AWS using S3, EMR, Lambda, Athena, Kinesis, or EKS; maintaining Continuous Integration/Continuous Delivery (CI/CD) pipelines for application code using Jenkins, Stash, or Concourse; developing Unix shell scripts; and creating Control-M jobs to automate and schedule end-to-end processes.
  • DE architecting, designing, and building of real time and near real-time data ingestion frameworks for customer interactions flowing from different channels using AWS Services -- Kinesis (Stream and Firehose), Lambda, EMR, Snowflake Task, and Streams.
  • DE acting as a member of a team responsible for implementing data lake strategies to leverage Snowflake as a platform for structured and semi-structured data; and building and formulating data lake design patterns for data ingestion, processing, and extraction for personalization teams using Snowflake, SQL, Python, data warehousing, or advanced data modeling techniques.
  • DE performing platform migration, including seamlessly transitioning on-premise systems to AWS cloud infrastructure and end-to-end migration planning, execution, and optimization to ensure the full potential of cloud-based environments and modern data warehousing technologies.

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Fidelity’s Onsite Working Model
Fidelity is transitioning to a full-time onsite working model through a phased rollout across regions and roles. Currently, some roles and locations require 100% onsite presence, while others require less. Onsite expectations are likely to evolve as the rollout continues. This transition does not apply to fully remote roles.


Certifications:

Category:

Information Technology

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