MARKETING
The key to correcting the C-suite trust deficit
Take a moment to search “CMO tenure” and you’ll find a wide variety of content discussing the short tenure of CMOs and how it’s among the shortest of roles in the C-suite. If you dive deeper, you’ll find that CEOs don’t seem to trust CMOs.
Boathouse’s CMO Insights study (registration required) noted several sobering conclusions:
- 34% of CEOs have great confidence in their CMOs.
- 32% of CEOs trust their CMOs.
- 56% of CEOs believe their CMO supports their long-term vision.
- And only 10% of CEOs believe their CMO puts the CEO’s needs before their own.
If these statistics also apply to the CMO’s entire organization, then it’s clear we have a trust problem with marketing leadership.
If you haven’t read Patrick Lencioni’s “The Five Dysfunctions of a Team,” I consider it required reading for anyone in any leadership role. In his book, Lencioni builds a pyramid of dysfunctions that need to be addressed for a team to succeed. The foundational dysfunction — with which one cannot build a successful team — is “absence of trust.” We see it at scale with marketing organizations today.
Introducing objectivity through data
In “Hamlet,” Shakespeare writes, “There is nothing either good or bad, but thinking makes it so.” Each organization that makes up a company looks at the company from a different perspective. What marketing sees as positive, finance may see as negative. But who’s right? No one.
Usually, there is no objectivity because leadership comes up with an idea and we execute it. It’s like the fashion proverb “Beauty is in the eye of the beholder.” Unfortunately, we’re going to struggle to run a profitable organization if it’s run like a fashion show.
Therefore, we need to introduce objectivity to how we work. Leadership needs to come together to agree on goals that align with the goals of the broader organization. One element of this conversation should be an acknowledgment that this is turning a ship.
Often leaders — especially those without marketing backgrounds — are likely to expect instant gratification. It’s going to take time to turn the ship and you and your team would do well to set reasonable expectations right away.
Dig deeper: KPIs that connect: 5 metrics for marketing, sales and product alignment
Aligning goals and metrics across the organization
With goals in hand, we need to assign metrics to their progress and agree on the source(s) of truth. Once these objective measures are in place, perspective doesn’t matter. 2 + 2 = 4 regardless of whether you’re in HR or accounting.
Every public road has a speed limit and whether you’re in compliance with it has nothing to do with your perspective. If you’re above it, you’re wrong and subject to penalties. Referring to the fashion example, it’s not a fashion show where some people like a dress and others don’t.
By using data to objectively measure marketing’s progress within the organization and having the rest of the leadership buy into the strategy, we build trust through objectivity. Maybe the CEO would not have chosen the campaign the marketing team chose.
But if it was agreed that a >1 ROAS is how we measure a successful campaign, it can’t be argued that the campaign was unsuccessful if the ROAS was >1. In this example, the campaign was an objective success even if the CEO’s subjective opinion was negative.
Data-driven campaign planning
Within the marketing organization, campaigns should always be developed with measurement top of mind. Through analysis, we can determine what channels, creative, audiences and tactics will be most successful for a given campaign.
Being able to tell the leadership team that campaigns are chosen based on their ability to deliver measured results across metrics aligned to cross-departmental goals is a powerful message. It further builds trust and confidence that marketing isn’t run based on the CMO’s subjective opinions or gut decisions. Rather, it’s a collaborative, data-driven process.
For this to be successful, though, it can’t just be for show, where we make a gut decision and direct an analyst to go find data to back up our approach. This would be analytics theater, which is a perversion of the data. Instead, tell the analyst what you think you want to do and ask them to assess it.
For the rest of the organization’s leadership, ask questions when the marketing team presents a campaign. Find out how they came up with the strategy and expect to hear a lot about data — especially the metrics you all agreed would support the company’s overarching goals.
Dig deeper: 5 failure points of a marketing measurement plan — and how to fix them
Data literacy: Building credibility through transparency
Building trust doesn’t happen overnight, but a sustained practice of using data to drive marketing leadership’s decisions will build trust if the metrics ladder up to the organizational goals and all of leadership is bought into the measurement plan.
Over time, this trust will translate into longer tenure and more successful teams through building the infrastructure needed to tackle Lencioni’s five dysfunctions.
Opinions expressed in this article are those of the guest author and not necessarily MarTech. Staff authors are listed here.
MARKETING
YouTube Ad Specs, Sizes, and Examples [2024 Update]
Introduction
With billions of users each month, YouTube is the world’s second largest search engine and top website for video content. This makes it a great place for advertising. To succeed, advertisers need to follow the correct YouTube ad specifications. These rules help your ad reach more viewers, increasing the chance of gaining new customers and boosting brand awareness.
Types of YouTube Ads
Video Ads
- Description: These play before, during, or after a YouTube video on computers or mobile devices.
- Types:
- In-stream ads: Can be skippable or non-skippable.
- Bumper ads: Non-skippable, short ads that play before, during, or after a video.
Display Ads
- Description: These appear in different spots on YouTube and usually use text or static images.
- Note: YouTube does not support display image ads directly on its app, but these can be targeted to YouTube.com through Google Display Network (GDN).
Companion Banners
- Description: Appears to the right of the YouTube player on desktop.
- Requirement: Must be purchased alongside In-stream ads, Bumper ads, or In-feed ads.
In-feed Ads
- Description: Resemble videos with images, headlines, and text. They link to a public or unlisted YouTube video.
Outstream Ads
- Description: Mobile-only video ads that play outside of YouTube, on websites and apps within the Google video partner network.
Masthead Ads
- Description: Premium, high-visibility banner ads displayed at the top of the YouTube homepage for both desktop and mobile users.
YouTube Ad Specs by Type
Skippable In-stream Video Ads
- Placement: Before, during, or after a YouTube video.
- Resolution:
- Horizontal: 1920 x 1080px
- Vertical: 1080 x 1920px
- Square: 1080 x 1080px
- Aspect Ratio:
- Horizontal: 16:9
- Vertical: 9:16
- Square: 1:1
- Length:
- Awareness: 15-20 seconds
- Consideration: 2-3 minutes
- Action: 15-20 seconds
Non-skippable In-stream Video Ads
- Description: Must be watched completely before the main video.
- Length: 15 seconds (or 20 seconds in certain markets).
- Resolution:
- Horizontal: 1920 x 1080px
- Vertical: 1080 x 1920px
- Square: 1080 x 1080px
- Aspect Ratio:
- Horizontal: 16:9
- Vertical: 9:16
- Square: 1:1
Bumper Ads
- Length: Maximum 6 seconds.
- File Format: MP4, Quicktime, AVI, ASF, Windows Media, or MPEG.
- Resolution:
- Horizontal: 640 x 360px
- Vertical: 480 x 360px
In-feed Ads
- Description: Show alongside YouTube content, like search results or the Home feed.
- Resolution:
- Horizontal: 1920 x 1080px
- Vertical: 1080 x 1920px
- Square: 1080 x 1080px
- Aspect Ratio:
- Horizontal: 16:9
- Square: 1:1
- Length:
- Awareness: 15-20 seconds
- Consideration: 2-3 minutes
- Headline/Description:
- Headline: Up to 2 lines, 40 characters per line
- Description: Up to 2 lines, 35 characters per line
Display Ads
- Description: Static images or animated media that appear on YouTube next to video suggestions, in search results, or on the homepage.
- Image Size: 300×60 pixels.
- File Type: GIF, JPG, PNG.
- File Size: Max 150KB.
- Max Animation Length: 30 seconds.
Outstream Ads
- Description: Mobile-only video ads that appear on websites and apps within the Google video partner network, not on YouTube itself.
- Logo Specs:
- Square: 1:1 (200 x 200px).
- File Type: JPG, GIF, PNG.
- Max Size: 200KB.
Masthead Ads
- Description: High-visibility ads at the top of the YouTube homepage.
- Resolution: 1920 x 1080 or higher.
- File Type: JPG or PNG (without transparency).
Conclusion
YouTube offers a variety of ad formats to reach audiences effectively in 2024. Whether you want to build brand awareness, drive conversions, or target specific demographics, YouTube provides a dynamic platform for your advertising needs. Always follow Google’s advertising policies and the technical ad specs to ensure your ads perform their best. Ready to start using YouTube ads? Contact us today to get started!
MARKETING
Why We Are Always ‘Clicking to Buy’, According to Psychologists
Amazon pillows.
MARKETING
A deeper dive into data, personalization and Copilots
Salesforce launched a collection of new, generative AI-related products at Connections in Chicago this week. They included new Einstein Copilots for marketers and merchants and Einstein Personalization.
To better understand, not only the potential impact of the new products, but the evolving Salesforce architecture, we sat down with Bobby Jania, CMO, Marketing Cloud.
Dig deeper: Salesforce piles on the Einstein Copilots
Salesforce’s evolving architecture
It’s hard to deny that Salesforce likes coming up with new names for platforms and products (what happened to Customer 360?) and this can sometimes make the observer wonder if something is brand new, or old but with a brand new name. In particular, what exactly is Einstein 1 and how is it related to Salesforce Data Cloud?
“Data Cloud is built on the Einstein 1 platform,” Jania explained. “The Einstein 1 platform is our entire Salesforce platform and that includes products like Sales Cloud, Service Cloud — that it includes the original idea of Salesforce not just being in the cloud, but being multi-tenancy.”
Data Cloud — not an acquisition, of course — was built natively on that platform. It was the first product built on Hyperforce, Salesforce’s new cloud infrastructure architecture. “Since Data Cloud was on what we now call the Einstein 1 platform from Day One, it has always natively connected to, and been able to read anything in Sales Cloud, Service Cloud [and so on]. On top of that, we can now bring in, not only structured but unstructured data.”
That’s a significant progression from the position, several years ago, when Salesforce had stitched together a platform around various acquisitions (ExactTarget, for example) that didn’t necessarily talk to each other.
“At times, what we would do is have a kind of behind-the-scenes flow where data from one product could be moved into another product,” said Jania, “but in many of those cases the data would then be in both, whereas now the data is in Data Cloud. Tableau will run natively off Data Cloud; Commerce Cloud, Service Cloud, Marketing Cloud — they’re all going to the same operational customer profile.” They’re not copying the data from Data Cloud, Jania confirmed.
Another thing to know is tit’s possible for Salesforce customers to import their own datasets into Data Cloud. “We wanted to create a federated data model,” said Jania. “If you’re using Snowflake, for example, we more or less virtually sit on your data lake. The value we add is that we will look at all your data and help you form these operational customer profiles.”
Let’s learn more about Einstein Copilot
“Copilot means that I have an assistant with me in the tool where I need to be working that contextually knows what I am trying to do and helps me at every step of the process,” Jania said.
For marketers, this might begin with a campaign brief developed with Copilot’s assistance, the identification of an audience based on the brief, and then the development of email or other content. “What’s really cool is the idea of Einstein Studio where our customers will create actions [for Copilot] that we hadn’t even thought about.”
Here’s a key insight (back to nomenclature). We reported on Copilot for markets, Copilot for merchants, Copilot for shoppers. It turns out, however, that there is just one Copilot, Einstein Copilot, and these are use cases. “There’s just one Copilot, we just add these for a little clarity; we’re going to talk about marketing use cases, about shoppers’ use cases. These are actions for the marketing use cases we built out of the box; you can build your own.”
It’s surely going to take a little time for marketers to learn to work easily with Copilot. “There’s always time for adoption,” Jania agreed. “What is directly connected with this is, this is my ninth Connections and this one has the most hands-on training that I’ve seen since 2014 — and a lot of that is getting people using Data Cloud, using these tools rather than just being given a demo.”
What’s new about Einstein Personalization
Salesforce Einstein has been around since 2016 and many of the use cases seem to have involved personalization in various forms. What’s new?
“Einstein Personalization is a real-time decision engine and it’s going to choose next-best-action, next-best-offer. What is new is that it’s a service now that runs natively on top of Data Cloud.” A lot of real-time decision engines need their own set of data that might actually be a subset of data. “Einstein Personalization is going to look holistically at a customer and recommend a next-best-action that could be natively surfaced in Service Cloud, Sales Cloud or Marketing Cloud.”
Finally, trust
One feature of the presentations at Connections was the reassurance that, although public LLMs like ChatGPT could be selected for application to customer data, none of that data would be retained by the LLMs. Is this just a matter of written agreements? No, not just that, said Jania.
“In the Einstein Trust Layer, all of the data, when it connects to an LLM, runs through our gateway. If there was a prompt that had personally identifiable information — a credit card number, an email address — at a mimum, all that is stripped out. The LLMs do not store the output; we store the output for auditing back in Salesforce. Any output that comes back through our gateway is logged in our system; it runs through a toxicity model; and only at the end do we put PII data back into the answer. There are real pieces beyond a handshake that this data is safe.”
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