Data Engineer

Reposted 24 Days Ago
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Pune, Maharashtra, IND
In-Office
Senior level
Fintech • Financial Services
The Role
Designs, builds and maintains data pipelines, warehouses and lakes; implements processing algorithms; collaborates with data scientists to deploy ML models; leads/supervises teams and ensures data quality, security and compliance.
Summary Generated by Built In
Job Description

Purpose of the role

To build and maintain the systems that collect, store, process, and analyse data, such as data pipelines, data warehouses and data lakes to ensure that all data is accurate, accessible, and secure. 

Accountabilities

  • Build and maintenance of data architectures pipelines that enable the transfer and processing of durable, complete and consistent data.
  • Design and implementation of data warehoused and data lakes that manage the appropriate data volumes and velocity and adhere to the required security measures.
  • Development of processing and analysis algorithms fit for the intended data complexity and volumes.
  • Collaboration with data scientist to build and deploy machine learning models.

Analyst Expectations

  • To perform prescribed activities in a timely manner and to a high standard consistently driving continuous improvement.
  • Requires in-depth technical knowledge and experience in their assigned area of expertise
  • Thorough understanding of the underlying principles and concepts within the area of expertise
  • They lead and supervise a team, guiding and supporting professional development, allocating work requirements and coordinating team resources.
  • If the position has leadership responsibilities, People Leaders are expected to demonstrate a clear set of leadership behaviours to create an environment for colleagues to thrive and deliver to a consistently excellent standard. The four LEAD behaviours are: L – Listen and be authentic, E – Energise and inspire, A – Align across the enterprise, D – Develop others.
  • OR for an individual contributor, they develop technical expertise in work area, acting as an advisor where appropriate.
  • Will have an impact on the work of related teams within the area.
  • Partner with other functions and business areas.
  • Takes responsibility for end results of a team’s operational processing and activities.
  • Escalate breaches of policies / procedure appropriately.
  • Take responsibility for embedding new policies/ procedures adopted due to risk mitigation.
  • Advise and influence decision making within own area of expertise.
  • Take ownership for managing risk and strengthening controls in relation to the work you own or contribute to. Deliver your work and areas of responsibility in line with relevant rules, regulation and codes of conduct.
  • Maintain and continually build an understanding of how own sub-function integrates with function, alongside knowledge of the organisations products, services and processes within the function.
  • Demonstrate understanding of how areas coordinate and contribute to the achievement of the objectives of the organisation sub-function.
  • Make evaluative judgements based on the analysis of factual information, paying attention to detail.
  • Resolve problems by identifying and selecting solutions through the application of acquired technical experience and will be guided by precedents.
  • Guide and persuade team members and communicate complex / sensitive information.
  • Act as contact point for stakeholders outside of the immediate function, while building a network of contacts outside team and external to the organisation.

All colleagues will be expected to demonstrate the Barclays Values of Respect, Integrity, Service, Excellence and Stewardship – our moral compass, helping us do what we believe is right. They will also be expected to demonstrate the Barclays Mindset – to Empower, Challenge and Drive – the operating manual for how we behave.

Join us as a Data Engineer. At Barclays, we don’t just adapt to the future, we create it. As an Data Engineer, you will support the organisation, achieve its strategic objectives by the identification of business requirements and solutions that address business problems and opportunities.

To be successful as a Data Engineer you should have experience with:

  • Hands on experience in Abinitio ETL tool.
  • Hands on experience in python and pyspark and strong knowledge on Dataframes, RDD and SparkSQL
  • Hands on Experience in developing, testing and maintaining applications on AWS Cloud.
  • Strong hold on AWS Data Analytics Technology Stack (Glue, S3, Lambda, Lake formation, Athena)
  • Experience in Writing advanced SQL and PL SQL programs.
  • Experience in AWS data pipeline development.
  • Hands On Experience for building reusable components using AWS Tools/Technology
  • Should have worked at least on two major project implementations.

Some other highly valued skills may include:

  • Ability to engage with Stakeholders, elicit requirements/ user stories and translate requirements into ETL components
  • Ability to understand the infrastructure setup and be able to provide solutions either individually or working with teams.
  • Good knowledge of Data Marts and Data Warehousing concepts.
  • Resource should possess good analytical and Interpersonal skills.
  • Implement Cloud based Enterprise data warehouse with multiple data platform along with Snowflake and NoSQL environment to build data movement strategy.

You may be assessed on key critical skills relevant for success in role, such as risk and controls, change and transformation, business acumen, strategic thinking and digital and technology, as well as job-specific technical skills.

This role is based in Pune.

Skills Required

  • Hands on experience in Abinitio ETL tool.
  • Hands on experience in python and pyspark and strong knowledge on Dataframes, RDD and SparkSQL
  • Hands on Experience in developing, testing and maintaining applications on AWS Cloud.
  • Strong hold on AWS Data Analytics Technology Stack (Glue, S3, Lambda, Lake formation, Athena)
  • Experience in Writing advanced SQL and PL SQL programs.
  • Experience in AWS data pipeline development.
  • Hands On Experience for building reusable components using AWS Tools/Technology
  • Should have worked at least on two major project implementations.
  • Ability to engage with Stakeholders, elicit requirements and translate into ETL components
  • Ability to understand infrastructure setup and provide solutions
  • Good knowledge of Data Marts and Data Warehousing concepts.
  • Good analytical and interpersonal skills.
  • Experience implementing cloud based enterprise data warehouse, Snowflake and NoSQL environments.
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The Company
HQ: London
83,500 Employees

What We Do

Barclays is a British universal bank. We are diversified by business, by different types of customers and clients, and by geography. Our businesses include consumer banking and payments operations around the world, as well as a top-tier, full service, global corporate and investment bank, all of which are supported by our service company which provides technology, operations and functional services across the Group. With over 325 years of history and expertise in banking, Barclays operates in over 40 countries and employs approximately 83,500 people. Barclays moves, lends, invests and protects money for customers and clients worldwide.

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