<p></p>
<p>Enviado de um dispositivo móvel.<br>
Sent from a mobile device. </p>
<div class="gmail_quote">---------- Mensagem encaminhada ----------<br>De: "Revolution Analytics" <<a href="mailto:info@revolutionanalytics.com">info@revolutionanalytics.com</a>><br>Data: 27/11/2012 21:49<br>
Assunto: Revolution Webinar Series: Real-time Big Data Analytics: From Deployment to Production<br>Para:  <<a href="mailto:leandromarino@leandromarino.com.br">leandromarino@leandromarino.com.br</a>><br><br type="attribution">
<u></u>



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<img src="http://na-d.marketo.com/rs/revolutioncomputing/images/logo_revolutionanalytics_150x30.gif" align="left" border="0" height="30" width="150" alt="Revolution Analytics"><div style="color:#ff6633;font-size:16px;font-weight:bold;line-height:30px;letter-spacing:2px;text-transform:uppercase;margin-left:250px">
<div>2012 Fall Webinar Series</div>
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<div style="padding:14px"><p>Hello Everyone! There's still time to register for this Thursday's webinar "<strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/real-time-big-data-analytics/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">Real-time Big Data Analytics: From Deployment to Production</a></strong>"  presented by David Smith, VP of Marketing & Community at Revolution  Analytics. Join us as David describes the five stages  of real-time  analytics deployment, the technologies supporting each stage, and how   Revolution  Analytics software works with the entire analytics stack to  bring  Big  Data analytics to real-time production environments.</p>

<p><strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://info.revolutionanalytics.com/real-time-big-data-analytics.html?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">Reserve your seat now!</a></strong></p>
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<div style="line-height:16px;font-family:Arial,Helvetica,sans-serif;margin-bottom:0px;color:#424242;margin-left:10px;font-size:16px;font-weight:bold">Featured Webinar</div>
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<td style="padding:14px;background-color:#f1f1f1;font-size:11px;font-family:Tahoma,Helvetica;color:#45555f" colspan="2" align="center"><img src="http://www.revolutionanalytics.com/images/speakers/David-Smith-250px.jpg" alt="David Smith" width="250" height="250"></td>

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<p><strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/real-time-big-data-analytics/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">Real-time Big Data Analytics: From Deployment to Production</a></strong></p>

<p>As the Big Data market has evolved, the focus has shifted  from data   operations (storage, access and processing of data) to data science    (understanding, analyzing and forecasting from data). And as new models   are  developed, organizations need a process for deploying analytics   from research  into the production environment. In this talk, we'll   describe the five stages  of real-time analytics deployment:</p>

<ul>
<li>Data distillation</li>
<li>Model development</li>
<li>Model validation and deployment</li>
<li>Model refresh</li>
<li>Real-time model scoring</li>
</ul>
<p>We'll review the technologies supporting each stage, and how    Revolution Analytics software works with the entire analytics stack to   bring  Big Data analytics to real-time production environments.</p>
<p><span style="background-color:#f1f1f1;font-size:11px;font-family:Tahoma,Helvetica;color:#45555f"><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://info.revolutionanalytics.com/real-time-big-data-analytics.html?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank"><img src="http://info.revolutionanalytics.com/rs/revolutioncomputing/images/RegisterNowOrange.gif" border="0" alt="REGISTER NOW" width="177" height="39" align="left"></a></span></p>

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<td style="padding:5px;background-color:#f1f1f1;font-size:11px;font-family:Tahoma,Helvetica;color:#45555f" width="48" align="center"><img src="http://info.revolutionanalytics.com/rs/revolutioncomputing/images/User.png" border="0" alt="Presenter" width="32" height="32"></td>

<td style="padding:5px;background-color:#f1f1f1;font-size:12px;font-family:Tahoma,Helvetica;color:#45555f" width="210"><strong>David Smith</strong><br> VP Marketing & Community, Revolution Analytics</td>
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<td style="padding:5px;background-color:#f1f1f1;font-size:12px;font-family:Tahoma,Helvetica;color:#45555f"><strong>Thursday, November 29, 2012</strong></td>
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<td style="padding:5px;background-color:#f1f1f1;font-size:12px;font-family:Tahoma,Helvetica;color:#45555f" valign="top"><strong>10:00AM - 11:00AM Pacific Time</strong> <br> (<a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.timeanddate.com/worldclock/fixedtime.html?msg=Real-time+Big+Data+Analytics%3A+From+Deployment+to+Production&iso=20121129T10&p1=234&ah=1&mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">Click here for time in your local time zone</a>)</td>

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<div style="line-height:16px;font-family:Arial,Helvetica,sans-serif;margin-bottom:0px;color:#424242;margin-left:10px;font-size:16px;font-weight:bold">Archived Webinars</div>
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<td valign="top"><strong><em>Presented Nov 15, 2012</em></strong></td>
<td valign="top"><strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/new-advances-in-high-performance-analytics-with-r/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">New Advances in High Performance Analytics with R: ‘Big Data’ Decision Trees and Analysis of Hadoop Data</a></strong>
<p>Revolution R Enterprise 6.1 includes two important   advances  in high performance predictive analytics with R:  (1) big data   decision trees, and (2) the  ability to easily extract and perform   predictive analytics on data stored in  the Hadoop Distributed File   System (HDFS).</p>

<p>Classification and regression trees are among the most    frequently used algorithms for data analysis and data mining. The   implementation provided in Revolution  Analytics’ RevoScaleR package is   parallelized, scalable, distributable, and  designed with big data in   mind. </p>

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<td valign="top"><strong><em>Presented Nov 8, 2012</em></strong></td>
<td valign="top"><strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/order-fulfillment-forecasting-at-john-deere/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">Order Fulfillment Forecasting at John Deere: How R Facilitates Creativity and Flexibility</a></strong>
<p>Statistical analysis has been known to be invaluable to any     manufactory's quality assurance for decades. Recently the value of valid     statistical analysis has also been demonstrated to radically improve   the   ability of a company's ability to weather extreme peaks and valley   in   customer demand. John Deere has been able to adjust to commodity   spikes   and housing downturns much better than its competitors have.   This is in   part due to the implementation of statistical analysis and   the use of R   software in the order fulfillment function of John Deere.</p>

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<td valign="top"><strong><em>Presented Nov 1, 2012</em></strong></td>
<td valign="top"><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/rise-of-data-science/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank"><strong>The Rise of Data Science in the Age of Big Data Analytics: Why Data Distillation and Machine Learning Aren't Enough</strong></a>
<p>The reason why Big Data is important is because  we want to use it to     make sense of our world. It's tempting to think there's  some "magic     bullet" for analyzing big data, but simple "data distillation"  often     isn't enough, and unsupervised machine-learning systems can be     dangerous.  (Like, bringing-down-the-entire-financial-system dangerous.)     Data Science is  the key to unlocking insight from Big Data: by     combining computer science  skills with statistical analysis and a deep     understanding of the data and  problem we can not only make better     predictions, but also fill in gaps in our  knowledge, and even find     answers to questions we hadn't even thought of yet.</p>

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<td valign="top"><em><strong>Presented Jun 28, 2012</strong></em></td>
<td valign="top"><strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/operational-risk-measurement-with-revoscaler/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">Achieving High-Performing, Simulation-Based Operational Risk Measurement with  RevoScaleR</a></strong>
<p>Under the Basel  II Accord, financial institutions are required for the   first time to determine  capital requirements for a new class of risk –   operational risk.  Large and internally active banks are  required to   estimate operational risk exposure using the Advanced Measurement    Approach (AMA), which relies on advanced empirical models.  As banks   continue to develop and enhance  their own AMA models for operational   risk measurement, they are increasingly  utilizing R to perform various   modeling tasks.</p>

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<td valign="top"><strong><em>Presented Jun 20, 2012</em></strong><br></td>
<td valign="top"><strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/100-percent-r-and-more/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">100% R and More: Plus What's New in Revolution R Enterprise 6.0</a></strong> <br>
 <br> R users already know why the R language is the lingua franca of   statisticians    today: because it's the            most powerful statistical language   in the world.               Revolution Analytics builds on the power of open source   R, and adds performance, productivity and integration features to create   Revolution R Enterprise.               In this webinar, author and blogger David   Smith will introduce the additional capabilities of Revolution R   Enterprise.</td>

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<td valign="top"><strong><em>Presented Jun 5, 2012</em></strong><br></td>
<td valign="top"><strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/introduction-to-r-for-data-mining/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">Introduction to R for Data Mining</a></strong> <br>
 <br> We at Revolution Analytics are often  asked “What is the best way to   learn   R?” While              acknowledging that there may be  as many effective   learning styles as there are people we have identified three  factors   that greatly facilitate learning R.                In this webinar, we focus on data   mining as  the application area and show how anyone with just a basic   knowledge of  elementary data mining techniques can become immediately   productive in R.</td>

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<td valign="top"><strong><em>Presented May 2, 2012</em></strong><br></td>
<td valign="top"><strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/r-and-hadoop-equals-big-data-analytics/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">R + Hadoop = Big Data Analytics</a></strong> <br>
 <br> RHadoop is an open source project spearheaded by    Revolution Analytics to grant data scientists       access to Hadoop’s   scalability  from their favorite language, R.  It  allows users to write   general MapReduce programs, offering the full power and  ecosystem of   an existing, established programming language.       In this webinar, Antonio   will provide a brief introduction to  Hadoop and R. He will describe how   rmr  allows R developers to program in the MapReduce framework, and   provides for all  developers an alternative way to implement MapReduce   programs that strikes a  delicate   compromise     between power and   usability.</td>

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<td width="29%" valign="top"><strong><em>Presented Mar 28, 2012</em></strong></td>
<td width="71%" valign="top"><strong><a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/2012/actuarial-analytics-in-r/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">Actuarial Analytics in R</a></strong>
<p>With data analysis showing up in domains  as varied   as baseball,   evidence-based medicine, predicting recidivism and child    support   lapses, judging wine quality, credit scoring, supermarket   scanner data    analysis, and “genius” recommendation engines, “business        analytics”   is part of  the zeitgeist.      This is a good moment for   actuaries to   remember that their  discipline is arguably the first – and   a quarter   of a millennium old – example  of business analytics at work.        Today,   the widespread availability of  sophisticated open-source   statistical   computing and data visualization  environments provides  the   actuarial   profession with an unprecedented  opportunity to deepen its   expertise   as well as broaden its horizons, living up  to  its     potential   as a   profession of creative and flexible data  scientists. </p>

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<td colspan="2" valign="top"><em><strong>View and download all of this year's archived webinars from the <a href="http://pages.revolutionanalytics.com/track?type=click&enid=bWFpbGluZ2lkPXJldm9sdXRpb25jb21wdXRpbmdCZXRhY3VzdC0yMzMwLTYzMDMtMC0xMzc2LXByb2QtMTIwOSZtZXNzYWdlaWQ9MCZkYXRhYmFzZWlkPTEyMDkmc2VyaWFsPTEyNjUzNTM5NjQmZW1haWxpZD1sZWFuZHJvbWFyaW5vQGxlYW5kcm9tYXJpbm8uY29tLmJyJnVzZXJpZD0yMjU5MjU4LTEmZXh0cmE9JiYm&&&http://www.revolutionanalytics.com/news-events/free-webinars/?mkt_tok=3RkMMJWWfF9wsRokuK%2FJZKXonjHpfsX66ekkW6K%2BlMI%2F0ER3fOvrPUfGjI4AT8VkI%2FqLAzICFpZo2FFKH%2FaacJVU8%2FpTCE6%2FSC7ria%2Fd" target="_blank">Revolution Analytics website</a>. </strong></em>
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<td style="color:#45555f;font-family:Tahoma,Helvetica;font-size:11px;line-height:16px;vertical-align:top"><b>Revolution Analytics</b> 101 University Ave, Suite 300, Palo Alto, CA 94301. 1-855-GET-REVO / <a href="tel:%2B1%20650%20646%209545" value="+16506469545" target="_blank">+1 650 646 9545</a></td>

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