Description

Book Synopsis
Achieve greater success by increasing the agility of analytics lifecycle management

Agile by Design offers the insight you need to improve analytic lifecycle management while integrating the right analytics projects into different frameworks within your business. You will explore, in-depth, what analytics projects are and why they are set apart from traditional development initiatives. Beyond merely defining analytics projects, Agile by Design equips you with the information you need to apply agile methodologies in a way that tailors your approach to individual initiativesand the needs of your projects and team.

Lifecycle management is a complex subject area, and with the increasingly important integration of analytics into multiple facets of business models, understanding how to use agile tools while managing a product lifecycle is essential to maintaining a competitive edge in today''s professional world.

  • Gain an understanding of the principles, pr

    Table of Contents

    Introduction xiii

    About the Author xix

    Chapter 1 Adjusting to a Customer-Centric Landscape 1

    It’s a Whole New World 1

    From Customer-Aware to Customer-Centric 3

    Being Customer-Centric, Operationally Efficient, and Analytically Aware 6

    Our Example in Motion 9

    Enabling Innovation 10

    Chapter 2 The Analytic Lifecycle 13

    What Are Analytics, Anyway? 13

    Analytics in Your Organization 15

    Case Study Example 17

    Beyond IT: The Business Analytic Value Chain 18

    Analytic Delivery Lifecycle 19

    Stage One—Perform Business Discovery 20

    Stage Two—Perform Data Discovery 21

    Stage Three—Prepare Data 22

    Stage Four—Model Data 23

    Stage Five—Score and Deploy 24

    Stage Six—Evaluate and Improve 25

    Getting Started 25

    Summary 26

    Chapter 3 Getting Your Analytic Project off the Ground 27

    A Day in the Life 29

    Visioning 30

    Facilitating Your Visioning Session 32

    Think Like a Customer 33

    Summary 36

    Chapter 4 Project Justification and Prioritization 37

    Organizational Value of Analytics 37

    Analytic Demand Management Strategy 38

    Results 40

    Project Prioritization Criteria 42

    Value-Based Prioritization 43

    Financial-Based Prioritization 45

    Knowledge Acquisition Spikes 46

    Summary 47

    Chapter 5 Analytics—the Agile Way 49

    Getting Started 49

    Understanding Waterfall 51

    The Heart of Agile 53

    The Agile Manifesto/Declaration of Interdependence 54

    Selecting the Right Methodology 57

    Scrum 58

    eXtreme Programming (XP) 59

    Summary 61

    Chapter 6 Analytic Planning Hierarchies 63

    Analytic Project Example 63

    Inputs into Planning Cycles 66

    Release Planning 69

    Analytic Release Plan 70

    Release Train 71

    Summary 73

    Chapter 7 Our Analytic Scrum Framework 75

    Getting Started 75

    The Scrum Framework 77

    Sprint Planning 78

    Sprint Execution 80

    Daily Standup 81

    How Do We Know When We’re Done? 82

    Sprint Review 83

    Sprint Retrospective 85

    Summary 85

    Chapter 8 Analytic Scrum Roles and Responsibilities 87

    Product Owner Description 89

    Product Owner: A Day in the Life 91

    ScrumMaster Description 92

    ScrumMaster: A Day in the Life 94

    Analytic Development Team Description 95

    Additional Roles 97

    Summary 98

    Chapter 9 Gathering Analytic User Stories 101

    Overview 101

    User Stories 103

    The Card 104

    Analytic User Story Examples 105

    Technical User Stories 106

    The Conversation 107

    The Confirmation 107

    Tools and Techniques 108

    INVEST in Good Stories 109

    Epics 111

    Summary 112

    Chapter 10 Facilitating Your Story Workshop 113

    Stakeholder Analysis 113

    Managing Stakeholder Influence 116

    Agile versus Traditional Stakeholder Management 118

    The Story Workshop 118

    Workshop Preparation 119

    Facilitating Your Workshop 121

    Must-Answer Questions 123

    Post-Workshop 124

    Summary 126

    Chapter 11 Collecting Knowledge Through Spikes 127

    With Data, Well Begun Is Half Done 127

    The Data Spike 129

    Data Gathering 131

    Visualization and Iterations 135

    Defining Your Target Variable 136

    Summary 138

    Chapter 12 Shaping the Analytic Product Backlog 141

    Creating Your Analytic Product Backlog 141

    Going DEEP 145

    Product Backlog Grooming 146

    Defining “Ready” 146

    Managing Flow 147

    Release Flow Management 148

    Sprint Flow Management 148

    Summary 149

    Chapter 13 The Analytic Sprint: Planning and Execution 151

    Committing the Team 151

    The Players 153

    Sprint Planning 154

    Velocity 155

    Task Definition 156

    The Team’s Definition of Done 158

    Organizing Work 159

    Sprint Zero 160

    Sprint Execution 161

    Summary 163

    Chapter 14 The Analytic Sprint: Review and Retrospective 165

    Sprint Review 165

    Roles and Responsibilities 168

    Sprint Retrospective 168

    Sprint Planning (Again) 171

    Layering in Complexity 173

    Summary 175

    Chapter 15 Building in Quality and Simplicity 177

    Quality Planning 177

    Simple Design 181

    Coding Standards 183

    Refactoring 184

    Collective Code Ownership 185

    Technical Debt 186

    Testing 187

    Verification and Validation 188

    Summary 189

    Chapter 16 Collaboration and Communication 191

    The Team Space 191

    Things to Put in the Information Radiator 194

    Analytic Velocity 195

    Improving Velocity 196

    The Kanban or Task Board 197

    Considering an Agile Project Management Tool 198

    Summary 200

    Chapter 17 Business Implementation Planning 203

    Are We Done Yet? 203

    What’s Next? 205

    Analytic Release Planning 206

    Section 1: What Did We Do, and Why? 206

    Section 2: Supporting Information 208

    Section 3: Model Highlights 208

    Section 4: Conclusions and Recommendations 208

    Section 5: Appendix 209

    Model Review 209

    Levers to Pull 210

    Persona-Based Design 211

    Segmentation Case Study 213

    Summary 214

    Chapter 18 Building Agility into Test-and-Learn Strategies 215

    What Is Test-and-Learn? 215

    Layering in Complexity 218

    Incorporating Test-and-Learn into Your Model Deployment Strategy 219

    Creating a Culture of Experimentation 221

    Failing Fast and Frequently 222

    Who Owns Testing? 222

    Getting Started 223

    Summary 225

    Chapter 19 Operationalizing Your Model Deployment Strategy 227

    Finding the Right Model 227

    Simplicity over Complexity 231

    How Deep Do We Go? 231

    What Is an Operational Model Process? 232

    Getting Your Data in Order 234

    Automate Model-Ready Data Processes 235

    So Who Owns It? 236

    What If I Can’t Automate This Process Right Now? 236

    Determine Model Scoring Frequency 237

    Model Performance Monitoring 239

    Analytics—the Success to Plan For 241

    Summary 243

    Chapter 20 Analytic Ever After 245

    Beginning Your Journey 245

    Supporting the Analytic Team 246

    The Importance of Agile Analytic Leadership 248

    Finding a Pilot Project 249

    Scaling Up 249

    The End of the Beginning 251

    Sources 253

    Index 255

Agile by Design

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    £30.39

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    RRP £37.99 – you save £7.60 (20%)

    Order before 4pm tomorrow for delivery by Fri 7 Aug 2026.

    A Hardback by Rachel Alt-Simmons

      Trusted by thousands of customers. See 2,385+ Customer Reviews

      View other formats and editions of Agile by Design by Rachel Alt-Simmons

      Publisher: John Wiley & Sons Inc
      Publication Date: Publication Date: 26/02/2016
      ISBN13: 9781118905661, 978-1118905661
      ISBN10: 1118905660

      Description

      Book Synopsis
      Achieve greater success by increasing the agility of analytics lifecycle management

      Agile by Design offers the insight you need to improve analytic lifecycle management while integrating the right analytics projects into different frameworks within your business. You will explore, in-depth, what analytics projects are and why they are set apart from traditional development initiatives. Beyond merely defining analytics projects, Agile by Design equips you with the information you need to apply agile methodologies in a way that tailors your approach to individual initiativesand the needs of your projects and team.

      Lifecycle management is a complex subject area, and with the increasingly important integration of analytics into multiple facets of business models, understanding how to use agile tools while managing a product lifecycle is essential to maintaining a competitive edge in today''s professional world.

      • Gain an understanding of the principles, pr

        Table of Contents

        Introduction xiii

        About the Author xix

        Chapter 1 Adjusting to a Customer-Centric Landscape 1

        It’s a Whole New World 1

        From Customer-Aware to Customer-Centric 3

        Being Customer-Centric, Operationally Efficient, and Analytically Aware 6

        Our Example in Motion 9

        Enabling Innovation 10

        Chapter 2 The Analytic Lifecycle 13

        What Are Analytics, Anyway? 13

        Analytics in Your Organization 15

        Case Study Example 17

        Beyond IT: The Business Analytic Value Chain 18

        Analytic Delivery Lifecycle 19

        Stage One—Perform Business Discovery 20

        Stage Two—Perform Data Discovery 21

        Stage Three—Prepare Data 22

        Stage Four—Model Data 23

        Stage Five—Score and Deploy 24

        Stage Six—Evaluate and Improve 25

        Getting Started 25

        Summary 26

        Chapter 3 Getting Your Analytic Project off the Ground 27

        A Day in the Life 29

        Visioning 30

        Facilitating Your Visioning Session 32

        Think Like a Customer 33

        Summary 36

        Chapter 4 Project Justification and Prioritization 37

        Organizational Value of Analytics 37

        Analytic Demand Management Strategy 38

        Results 40

        Project Prioritization Criteria 42

        Value-Based Prioritization 43

        Financial-Based Prioritization 45

        Knowledge Acquisition Spikes 46

        Summary 47

        Chapter 5 Analytics—the Agile Way 49

        Getting Started 49

        Understanding Waterfall 51

        The Heart of Agile 53

        The Agile Manifesto/Declaration of Interdependence 54

        Selecting the Right Methodology 57

        Scrum 58

        eXtreme Programming (XP) 59

        Summary 61

        Chapter 6 Analytic Planning Hierarchies 63

        Analytic Project Example 63

        Inputs into Planning Cycles 66

        Release Planning 69

        Analytic Release Plan 70

        Release Train 71

        Summary 73

        Chapter 7 Our Analytic Scrum Framework 75

        Getting Started 75

        The Scrum Framework 77

        Sprint Planning 78

        Sprint Execution 80

        Daily Standup 81

        How Do We Know When We’re Done? 82

        Sprint Review 83

        Sprint Retrospective 85

        Summary 85

        Chapter 8 Analytic Scrum Roles and Responsibilities 87

        Product Owner Description 89

        Product Owner: A Day in the Life 91

        ScrumMaster Description 92

        ScrumMaster: A Day in the Life 94

        Analytic Development Team Description 95

        Additional Roles 97

        Summary 98

        Chapter 9 Gathering Analytic User Stories 101

        Overview 101

        User Stories 103

        The Card 104

        Analytic User Story Examples 105

        Technical User Stories 106

        The Conversation 107

        The Confirmation 107

        Tools and Techniques 108

        INVEST in Good Stories 109

        Epics 111

        Summary 112

        Chapter 10 Facilitating Your Story Workshop 113

        Stakeholder Analysis 113

        Managing Stakeholder Influence 116

        Agile versus Traditional Stakeholder Management 118

        The Story Workshop 118

        Workshop Preparation 119

        Facilitating Your Workshop 121

        Must-Answer Questions 123

        Post-Workshop 124

        Summary 126

        Chapter 11 Collecting Knowledge Through Spikes 127

        With Data, Well Begun Is Half Done 127

        The Data Spike 129

        Data Gathering 131

        Visualization and Iterations 135

        Defining Your Target Variable 136

        Summary 138

        Chapter 12 Shaping the Analytic Product Backlog 141

        Creating Your Analytic Product Backlog 141

        Going DEEP 145

        Product Backlog Grooming 146

        Defining “Ready” 146

        Managing Flow 147

        Release Flow Management 148

        Sprint Flow Management 148

        Summary 149

        Chapter 13 The Analytic Sprint: Planning and Execution 151

        Committing the Team 151

        The Players 153

        Sprint Planning 154

        Velocity 155

        Task Definition 156

        The Team’s Definition of Done 158

        Organizing Work 159

        Sprint Zero 160

        Sprint Execution 161

        Summary 163

        Chapter 14 The Analytic Sprint: Review and Retrospective 165

        Sprint Review 165

        Roles and Responsibilities 168

        Sprint Retrospective 168

        Sprint Planning (Again) 171

        Layering in Complexity 173

        Summary 175

        Chapter 15 Building in Quality and Simplicity 177

        Quality Planning 177

        Simple Design 181

        Coding Standards 183

        Refactoring 184

        Collective Code Ownership 185

        Technical Debt 186

        Testing 187

        Verification and Validation 188

        Summary 189

        Chapter 16 Collaboration and Communication 191

        The Team Space 191

        Things to Put in the Information Radiator 194

        Analytic Velocity 195

        Improving Velocity 196

        The Kanban or Task Board 197

        Considering an Agile Project Management Tool 198

        Summary 200

        Chapter 17 Business Implementation Planning 203

        Are We Done Yet? 203

        What’s Next? 205

        Analytic Release Planning 206

        Section 1: What Did We Do, and Why? 206

        Section 2: Supporting Information 208

        Section 3: Model Highlights 208

        Section 4: Conclusions and Recommendations 208

        Section 5: Appendix 209

        Model Review 209

        Levers to Pull 210

        Persona-Based Design 211

        Segmentation Case Study 213

        Summary 214

        Chapter 18 Building Agility into Test-and-Learn Strategies 215

        What Is Test-and-Learn? 215

        Layering in Complexity 218

        Incorporating Test-and-Learn into Your Model Deployment Strategy 219

        Creating a Culture of Experimentation 221

        Failing Fast and Frequently 222

        Who Owns Testing? 222

        Getting Started 223

        Summary 225

        Chapter 19 Operationalizing Your Model Deployment Strategy 227

        Finding the Right Model 227

        Simplicity over Complexity 231

        How Deep Do We Go? 231

        What Is an Operational Model Process? 232

        Getting Your Data in Order 234

        Automate Model-Ready Data Processes 235

        So Who Owns It? 236

        What If I Can’t Automate This Process Right Now? 236

        Determine Model Scoring Frequency 237

        Model Performance Monitoring 239

        Analytics—the Success to Plan For 241

        Summary 243

        Chapter 20 Analytic Ever After 245

        Beginning Your Journey 245

        Supporting the Analytic Team 246

        The Importance of Agile Analytic Leadership 248

        Finding a Pilot Project 249

        Scaling Up 249

        The End of the Beginning 251

        Sources 253

        Index 255

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