Asset Liability Management for Australian Life Insurers Anton Kapel Zac Roberts



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Asset Liability Management for Australian Life Insurers Anton Kapel Zac Roberts Copyright 2006, the Tillinghast Business of Towers Perrin. All rights reserved. A licence to publish is granted to the Institute of Actuaries of Australia.

1. Definition of ALM Contents of Discussion 2. Potential for ALM in Australia 3. Practical Considerations for ALM Implementation 4. Discussion 1

1. Definition of ALM Contents of Discussion 2. Potential for ALM in Australia 3. Practical Considerations for ALM Implementation 4. Discussion 2

What is Asset Liability Management? A definition (US SOA task force): "Asset - Liability Management is the ongoing process of formulating, implementing, monitoring, and revising strategies related to assets and liabilities in an attempt to achieve financial objectives for a given set of risk tolerances and constraints. Coordination of decisions about assets and liabilities ALM is an ongoing process, not a one-time exercise The purpose of ALM is not necessarily to eliminate or even to minimise risk The goal is to achieve financial objectives subject to risk tolerances and other constraints 3

ALM provides the ability to quantify the financial impact of changing economic conditions & different company strategies This is the foundation of integrated risk and capital management Economic scenarios (e.g. inflation, asset class returns, GDP) Asset class behaviour Liability behaviour Asset/liability tactics and strategies Analysis Financial results (ALM metrics) 4

1. Definition of ALM Contents of Discussion 2. Potential for ALM in Australia 3. Practical Considerations for ALM Implementation 4. Discussion 5

Detailed product features and data Liability Model Detail There are many opportunities to use ALM in Australia, requiring different degrees of model complexity Pricing for products with guarantees Reserving to specified confidence intervals Assessing policyholder bonus strategy for par business Measuring, analysing and controlling embedded options and guarantees PRODUCT MANAGEMENT COMPANY MANAGEMENT Market consistent valuations Analysing the risk/return implications of investment strategies Target Surplus calculation and analysis Greater grouping of product features and data Selected products Company Coverage Determination and allocation of economic capital Setting performance targets Enterprise risk management Whole Company 6

Example 1: Calculation of target surplus and determination and allocation of economic capital Potential for ALM Calculate the probability of breaching pre-defined thresholds given: Your existing liabilities Different investment strategies Different new business strategies Calculate the economic capital required to limit the probability of ruin to an acceptable level Analyse strategies available to limit the amount of economic capital required Allocate this economic capital to different business units to assist in the comparison of return on capital across these business units Requirements Complete model of assets and liabilities is required Interactive asset and liability model Dynamic policyholder behaviour Dynamic company behaviour Model/data need to be tailored to facilitate reasonable run time Any differences between models should be understood Management needs to define Target thresholds Acceptable probability levels 7

Analysing economic capital and the probability of ruin $m ALM can be used to analyse the impact of different strategies, such as investment and product, on the economic capital requirement + 0 Economic Capital Two main objectives are possible Investigating strategies that lower the probability of ruin for a given level of capital Investigating strategies that lower the capital required for a given probability of ruin Selected risk tolerance Cumulative probability 8

Example 2: Analysing the implications of investment strategies Potential for ALM Establish formal guidelines around your investment strategy to ensure it is in line with your risk and return preferences Guidelines based on robust analysis of interaction of assets and liabilities Guidelines cover the current investment strategy, as well as how it should change under different economic conditions Gives more confidence regarding the suitability of your assets, given your liability profile Different investment strategies can be objectively compared Requirements Complete model of assets and liabilities is required Interactive asset and liability model Dynamic policyholder behaviour Dynamic company behaviour Model/data need to be tailored to facilitate reasonable run times Any differences between models should be understood Management need to determine the risk and return metrics used to compare different investment strategies Results should be incorporated into the investment guidelines 9

1 2 ALM process Process for for investment strategy analysis Asset Investment Policy & Strategy to Analyse Asset Investment Policy & Strategy A to Analyse B C A B C A,1 A,2 A,3 A,... 1 2 3 3 Scenarios to Analyse Scenarios to Analyse Stochastic Future Financial Projection Stochastic Future Financial Projection B,1 A,1 A,2 B,2 B,3 A,3 B,... A,... B,1 B,2 B,3 B,... C,1 C,2 C,3 C,... C,1 C,2 C,3 C,......,1...,2...,3...,... Calculating...,1...,2 the...,3 financial...,... results for each pair of one strategy/policy & one scenario Calculating the financial results for each pair Stochastically of one strategy/policy & one scenario generated Stochastically scenarios generated scenarios Analysing Analysing Select Measure Select Measure Expected ROE (example of measure ) Expected ROE (example of measure) A B B Risk Level A ALEF TM C C The financial result from each strategy/policy Risk Level are compared The financial results from each strategy/policy are compared Selection of the optimal investment strategy based Selection on risk of preferences the investment strategy based on risk preferences 10

Comparison of investment strategies Accumulated Profit after 5 years for a range of investment strategies C Different investment strategies can be analysed in terms of your defined risk and reward preferences Average A B D Analysis can incorporate dynamic company and policyholder behaviour Lower 5% Level Investment strategy and dynamic behaviour rules can change over time 11

Example 3: Assessing policyholder bonus strategy for participating business Potential for ALM Test the adequacy of current reserves to support the current bonus strategy under a range of scenarios The key levers that can be adjusted when analysing bonus strategy are: Initial assets Investment strategy Bonus strategy Metrics used to compare different combinations of these levers are: Probability of ruin Cost of guarantees Requirements Requires a multiple liability product model, a comprehensive asset model and flexibility to adjust the key levers used in the analysis Requires the ability to project the business using stochastic investment scenarios Real world scenarios Risk neutral scenarios Management needs to define Acceptable probability of ruin Investment and bonus strategies Risk and return metrics 12

Example 4: Pricing (and reserving) for products with guarantees The ALM process would be used to Calculate the charge required to cover the guarantee Calculate the reserving and capital requirements to specified confidence levels Perform profit testing The model design combines a product model with stochastic asset returns Corporate model sums across scenarios and controls company behaviour Liability model includes policyholder behaviour, such as dependent lapse rates and take-up rates Interaction with liability assumptions Cashflows Corporate Model Asset Class Returns Liability Model Scenario Generator 13

1. Definition of ALM Contents of Discussion 2. Potential for ALM in Australia 3. Practical Considerations for ALM Implementation 4. Discussion 14

Implementing an effective ALM system is an iterative process Scope Definition Research how you can use ALM to manage your business more effectively Management Implementation Software Implementation Establish the necessary management infrastructure Who will use the results and what will they expect? Should the results be integrated into the regular reporting process? Build your ALM system How can existing systems be incorporated in the ALM process? Should you start simple and build the projection system in phases? 15

Trade-offs are required when developing an ALM system Tension exists between model detail and run speed ALM models must run quickly, yet be sufficiently detailed to provide meaningful conclusions The impact of different strategies is the key information provided by an ALM system Number of model points Number of scenarios Projection horizon and time step Modeling approach for dynamic interactions Product features modeled Precision of calculations Model Detail vs. Run Speed Smart modelling techniques, eg customised code, scenario selection 16

Corporate ALM system Approximate dynamic interaction with liability assumptions Dynamic interaction with liability assumptions Cashflows Corporate Model Cashflows Cashflows Asset sale and purchase strategies Dynamic Products Asset Models Base Liability Models Bond Model Rider Liability Models Loan Model Pre-generated Products Base Liability Model Output Economic Scenario Generator Asset Class Returns Equity Model Cash Model Rider Liability Model Output Other Asset Model 17

1. Definition of ALM Contents of Discussion 2. Potential for ALM in Australia 3. Practical Considerations for ALM Implementation 4. Discussion 18

Discussion Topics One model or two? What is stopping greater analysis? No risk? Run times? Insufficiently sophisticated asset models? ALM interactions How can dynamic lapses be modelled? Dynamic investment stretegies? Other interactions? How can ALM systems be tested? What are the characteristics of effective ALM systems? What is the current level of ALM use in Australia? 19

Characteristics of effective ALM systems MODEL FEATURE Stochastic Modeling Dynamic Modeling Pre-generated Cashflows Flexibility and Ease of Use Speed Flexible Reporting Audit & Control Tools EXPLANATION Ability to undertake stochastic modelling to calculate ALM metrics and investigate outcomes for different strategies. Ability to undertake dynamic modelling to link asset and liability cashflows and incorporate company and policyholder behaviour. Ability to use pre-generated liability cashflows for products that are not very interest sensitive. Flexibility to be able to perform all the necessary analysis and calculate all necessary metrics, and target the calculations to improve efficiency. Ease of use assists quick development and understanding of the model. Ability to perform projections of thousands of economic scenarios. Distributed processing is an advantage for large numbers of scenarios. Ability to produce both deterministic and stochastic reports to meet all internal company requirements. Ability to monitor model changes to ensure consistency. 20

Asset Liability Management for Australian Life Insurers Anton Kapel Zac Roberts Copyright 2006, the Tillinghast Business of Towers Perrin. All rights reserved. A licence to publish is granted to the Institute of Actuaries of Australia.