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Operations- Performance Analytics- AVP

Gurugram

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What you’ll work on

Full posting

KKR is hiring for an enterprise Data Operations group to collect, manage, and harness the power of data across our diverse business activities.

We are hiring an AVP to lead the Performance Analytics function within the Data Operations CoE.

What you’ll bring

All qualifications

Core experience

  • 9-12 years of experience in performance analytics, investment analytics, fund reporting, or a comparable quantitative role within asset management
  • Demonstrated ownership of performance calculation logic and methodology, not solely the consumption of pre-calculated figures
  • Experience reconciling analytical output to accounting or fund administrator data and resolving variances with a documented audit trail
  • Experience building reporting and dashboards for senior stakeholders, and comfort presenting figures that will be scrutinized
  • Demonstrated experience mentoring, reviewing, or formally managing junior analysts
  • Excellent communication skills, with the ability to explain methodology and results to non-technical audiences

Preferred experience

  • Experience supporting AI workloads in financial services or other regulated industries.
  • Experience with credit, and private credit in particular, including yield, spread, loss, and recovery analytics
  • Experience across multiple asset classes, such as private equity, credit, real assets, and infrastructure
  • Bachelor’s or master’s degree in a quantitative discipline such as finance, economics, engineering, mathematics, statistics, or computer science
Qualification wording
9-12 years of experience in performance analytics, investment analytics, fund reporting, or a comparable quantitative role within asset management
Demonstrated ownership of performance calculation logic and methodology, not solely the consumption of pre-calculated figures
Experience reconciling analytical output to accounting or fund administrator data and resolving variances with a documented audit trail
Experience building reporting and dashboards for senior stakeholders, and comfort presenting figures that will be scrutinized
Demonstrated experience mentoring, reviewing, or formally managing junior analysts
Excellent communication skills, with the ability to explain methodology and results to non-technical audiences
Experience supporting AI workloads in financial services or other regulated industries.
Experience with credit, and private credit in particular, including yield, spread, loss, and recovery analytics
Experience across multiple asset classes, such as private equity, credit, real assets, and infrastructure
Bachelor’s or master’s degree in a quantitative discipline such as finance, economics, engineering, mathematics, statistics, or computer science
Education & alternatives
- Experience across multiple asset classes, such as private equity, credit, real assets, and infrastructure - Bachelor’s or master’s degree in a quantitative discipline such as finance, economics, engineering, mathematics, statistics, or computer science - CFA, CAIA, or comparable credential

Tools in this posting

  • Python
  • SQL
  • dbt
  • Sigma
  • Snowflake
  • Power BI
  • Tableau
Source — Tool mentions in context
- Strong command of the core private markets performance metrics, including gross and net IRR, MOIC, TVPI, DPI, RVPI, invested and returned capital, and Dollars at Work, with the ability to explain how each is constructed and where each can mislead - Advanced Python and SQL skills, with the ability to build, test, and maintain production-quality analytical code and data models - Experience reconciling analytical output to accounting or fund administrator data and resolving variances with a documented audit trail
- Experience with cloud data warehouses (e.g., Snowflake) and BI tools (e.g., Power BI, Sigma, Tableau) - Familiarity with dbt, Git, and modern analytics engineering practices, including modular transformations and version-controlled, tested data models - Experience applying AI, machine learning, or large language models to improve analytical and reporting workflows
- CFA, CAIA, or comparable credential - Experience with cloud data warehouses (e.g., Snowflake) and BI tools (e.g., Power BI, Sigma, Tableau) - Familiarity with dbt, Git, and modern analytics engineering practices, including modular transformations and version-controlled, tested data models

Job description

View original posting ↗

COMPANY OVERVIEW

KKR is a leading global investment firm that offers alternative asset management as well as capital markets and insurance solutions. KKR aims to generate attractive investment returns by following a patient and disciplined investment approach, employing world-class people, and supporting growth in its portfolio companies and communities. KKR sponsors investment funds that invest in private equity, credit and real assets and has strategic partners that manage hedge funds. KKR’s insurance subsidiaries offer retirement, life and reinsurance products under the management of Global Atlantic Financial Group. References to KKR’s investments may include the activities of its sponsored funds and insurance subsidiaries.

KKR's Gurugram office provides best in class services and solutions to our internal stakeholders and clients, drives organization wide process efficiency and transformation, and reflect KKR's global culture and values of teamwork and innovation. The office will contain multifunctional business capabilities and will be integral in furthering the growth and transformation of KKR.

POSITION SUMMARY

KKR is hiring for an enterprise Data Operations group to collect, manage, and harness the power of data across our diverse business activities. The Data Operations Center of Excellence (CoE) is a cross-functional team dedicated to formulating and driving KKR’s enterprise data strategy while also providing the operating leverage required to bring these strategies and frameworks to life.

We are hiring an AVP to lead the Performance Analytics function within the Data Operations CoE. This individual will own how fund, deal, and investor-level performance is modeled, calculated, validated, and reported across KKR’s private equity, credit, real assets, and infrastructure strategies. The role is accountable both for the underlying calculation logic, including methodology, mechanics, and documentation, and for the reporting and analysis delivered on top of it to investment teams, senior management, Finance, and Global Client Solutions.

This is a hands-on leadership position. The successful candidate will personally build models and write code while also leading a team of approximately three analysts and associates, setting technical standards, reviewing work, and developing junior talent. We are looking for a practitioner who is credible in the details of performance measurement and equally comfortable explaining a result to a senior stakeholder who wants to know why a number moved. The ideal candidate brings 7 to 10 years of experience in performance analytics, investment analytics, or a closely related quantitative function, with substantial private markets experience. Exposure to credit, particularly private credit, is a strong advantage given the growth of that business.

We are operating in a 4-day in office, 1-day flexible work arrangement.

ROLE AND RESPONSIBILITIES

  • Performance Methodology & Model Ownership: Own the design, documentation, and ongoing maintenance of KKR’s performance calculation logic across asset classes, including gross and net IRR, MOIC, TVPI, DPI, RVPI, invested and returned capital, Dollars at Work, and levered versus unlevered return treatment. Define and defend methodology choices, including fee and waterfall mechanics, cash flow timing conventions, FX treatment, and hedged versus unhedged presentation.
  • Multi-Level Performance Analytics: Produce and interpret performance at fund, deal, asset, investor, and share class or series level, ensuring results are internally consistent and reconcilable as they roll up and drill down.
  • Reconciliation & Data Integrity: Reconcile performance outputs to accounting and fund administrator sources of truth, investigate and resolve variances, and establish controls that catch breaks before they reach stakeholders. Consume administrator and system-calculated figures where appropriate while maintaining independent validation.
  • Attribution & Benchmarking: Build attribution frameworks that explain drivers of return and deliver benchmarking and public market equivalent analysis to contextualize fund and strategy performance.
  • Credit Performance Analytics: Support credit and private credit strategies with the metrics that discipline requires, including yield, spread, loss and recovery analysis, and average funded balance measurement.
  • Reporting & Automation: Deliver recurring and ad hoc performance reporting for investment teams, senior management, Finance, and Investor Relations, including investor-facing material. Replace manual processes with automated, tested, and version-controlled pipelines that are transparent and easy to verify.
  • Team Leadership & Mentorship: Lead a team of approximately three analysts and associates. Set analytical and coding standards, review outputs, prioritize workload, and actively develop the technical and domain skills of junior staff.
  • Stakeholder Partnership: Serve as the trusted point of contact for performance questions across the firm, translating stakeholder needs into analytical solutions and communicating results and their limitations clearly to both technical and non-technical audiences.
  • Cross-Functional Collaboration: Partner with data engineering, technology, Fund Accounting, and Investor Relations to ensure the data foundations, systems, and controls supporting performance analytics are robust and scalable.

QUALIFICATIONS

  • 9-12 years of experience in performance analytics, investment analytics, fund reporting, or a comparable quantitative role within asset management
  • Direct experience in private markets is required, including a working understanding of fund structures, capital calls and distributions, commitments and unfunded exposure, valuations, and fee and carry mechanics
  • Demonstrated ownership of performance calculation logic and methodology, not solely the consumption of pre-calculated figures
  • Strong command of the core private markets performance metrics, including gross and net IRR, MOIC, TVPI, DPI, RVPI, invested and returned capital, and Dollars at Work, with the ability to explain how each is constructed and where each can mislead
  • Advanced Python and SQL skills, with the ability to build, test, and maintain production-quality analytical code and data models
  • Experience reconciling analytical output to accounting or fund administrator data and resolving variances with a documented audit trail
  • Experience building reporting and dashboards for senior stakeholders, and comfort presenting figures that will be scrutinized
  • Demonstrated experience mentoring, reviewing, or formally managing junior analysts
  • Excellent communication skills, with the ability to explain methodology and results to non-technical audiences
  • Meticulous attention to detail, paired with a bias toward structured, formula-driven, and independently verifiable work
  • Strong cultural fit (teamwork, results-oriented, proactive, and high integrity)

PREFERRED QUALIFICATIONS

  • Experience supporting AI workloads in financial services or other regulated industries.
  • Experience with credit, and private credit in particular, including yield, spread, loss, and recovery analytics
  • Experience across multiple asset classes, such as private equity, credit, real assets, and infrastructure
  • Bachelor’s or master’s degree in a quantitative discipline such as finance, economics, engineering, mathematics, statistics, or computer science
  • CFA, CAIA, or comparable credential
  • Experience with cloud data warehouses (e.g., Snowflake) and BI tools (e.g., Power BI, Sigma, Tableau)
  • Familiarity with dbt, Git, and modern analytics engineering practices, including modular transformations and version-controlled, tested data models
  • Experience applying AI, machine learning, or large language models to improve analytical and reporting workflows
  • Experience supporting investor-facing performance reporting or LP due diligence requests.

KKR is an equal opportunity employer.  Individuals seeking employment are considered without regard to race, color, religion, national origin, age, sex, marital status, ancestry, physical or mental disability, veteran status, sexual orientation, or any other category protected by applicable law.

KKR will provide reasonable accommodations as required by applicable federal, state, and/or local laws. Individuals seeking an accommodation for the application or interview process should email Benefits@kkr.com. Emails sent for unrelated issues, such as following up on an application, will not receive a response.

If you are a qualified individual with a disability or a disabled veteran, you may request a reasonable accommodation if you are unable or limited in your ability to use or access https://www.kkr.com/careers because of your disability. You can request reasonable accommodations by sending an email to Benefits@kkr.com. Only emails left for this purpose will be returned.

Massachusetts Applicants: It is unlawful in Massachusetts to require or administer a lie detector test as a condition of employment or continued employment. An employer who violates this law shall be subject to criminal penalties and civil liability. This notice applies only to applicants and employees who work or will work in Massachusetts, in accordance with applicable state law.

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Gurugram

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First seen by us
Aug 19, 2026
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Last seen by us
Oct 9, 2026

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